Compare commits

..
22 Commits
Author SHA1 Message Date
José Valim 9decf4c78a Release v1.2.2 2016-01-31 10:17:08 +01:00
José Valim e2463a5589 Limit the list of attributes we consider reserved 2016-01-31 09:30:51 +01:00
José Valim a825f5a0c8 Force recompilation if dependency was recently fetched 2016-01-29 13:20:47 +01:00
José Valim 3c0d26cb74 Raise if trying to override reserved tag, closes #4236 2016-01-29 00:32:00 +01:00
José Valim f7a31ac804 Update CHANGELOG 2016-01-27 13:05:25 +01:00
José Valim 31aebcdc59 Automatically merge manager according to internal priority, closes #4230 2016-01-27 12:56:16 +01:00
José Valim afbac81918 Do not require all compilers available on manifest
Closes #4228

Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-27 10:11:38 +01:00
José Valim 0b78f86f08 Do not rely on compiled functions in Mix for autoload
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-25 10:00:55 +01:00
José Valim 7180b98f47 Support disabling autoload after compilation
Useful for delaying loading of modules that may depend
on NIFs until necessary.

Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-25 00:13:37 +01:00
José Valim 021cca436d Do not include debug_info in metadata String modules
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-25 00:13:28 +01:00
José Valim a3d88dc406 Release v1.2.1 2016-01-14 19:25:11 +01:00
Daniel Azuma 58a6291f17 Fix a crash in Macro.to_string if a tree looks like a sigil but the function is not an atom
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-13 11:19:58 +01:00
Aleksei Magusev 81884247d7 Warn when defimp is called for consolidated protocol
Conflicts:
	lib/elixir/lib/protocol.ex
2016-01-12 10:50:29 +01:00
Adrien Moreau c07a34f9a8 Correct the type definition of ExUnit.state for the failed state
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-12 09:20:45 +01:00
José Valim e05bfc78cb Improve docs and error handling for Access
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-10 22:52:08 +01:00
Aleksei Magusev cb430702c9 Preserve variable metadata during collection from assertion pattern
Closes #4174.
2016-01-09 20:47:46 +01:00
Aleksei Magusev 6aaa4bb06d Do not warn in match assertion if variable is reused in pattern
Having the folowing assertion `assert {var, var} = {1, 1}`,
the code produced previously:

  [var] = case(right) do
    {var, var} ->
      #...
      [var]
    _ ->
      #...
  end

And with the patch:

  [var, var] = case(right) do
    {var, var} ->
      #...
      [var, var]
    _ ->
      #...
  end
2016-01-06 23:56:44 +01:00
Thomas Fisher a6b80a19c5 Fixes bug in IEx.Config.configuration
IEx.Config.configuration was raising a FunctionClauseError since
it did not have a default value for width

Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-06 18:58:42 +01:00
Aleksei Magusev 8be0ad0499 Correct Macro.to_string/1 formatting for capture operator
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-06 18:58:07 +01:00
José Valim 8da4936ac3 Ensure dependencies are properly skipped when running in another environment
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-06 18:57:54 +01:00
James Fish bcc92ccc40 Support remote pids/ports with IEx helper i/1
Signed-off-by: José Valim <jose.valim@plataformatec.com.br>
2016-01-02 18:54:07 +01:00
José Valim d64d4b009c v1.2 branch 2016-01-01 11:51:36 +01:00
644 changed files with 47901 additions and 135117 deletions
-18
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@@ -1,18 +0,0 @@
version: 1-{branch}+{build}
build_script:
- cmd: C:\MinGW\msys\1.0\bin\make
- cmd: rmdir /s /q .git
before_test:
- cmd: set PATH=%PATH%;C:\Program Files\erl8.3\erts-8.3\bin
test_script:
- cmd: C:\MinGW\msys\1.0\bin\make --keep-going test_windows
environment:
ELIXIR_ASSERT_TIMEOUT: 2000
matrix:
allow_failures:
- platform: x86
- platform: x64
- platform: Any CPU
-17
View File
@@ -1,17 +0,0 @@
[
inputs: [
"lib/*/{lib,unicode,test}/**/*.{ex,exs}",
"lib/*/mix.exs"
],
locals_without_parens: [
# Formatter tests
assert_format: 2,
assert_format: 3,
assert_same: 1,
assert_same: 2,
# Errors tests
assert_eval_raise: 3
]
]
+9 -5
View File
@@ -1,13 +1,17 @@
/doc/
/lib/*/ebin/
/lib/*/_build/
/lib/*/tmp/
/doc
/ebin
/lib/*/ebin/*
/lib/*/tmp
/lib/elixir/src/*_lexer.erl
/lib/elixir/src/*_parser.erl
/lib/elixir/test/ebin/
/lib/elixir/src/elixir.app.src
/lib/elixir/test/ebin
/man/elixir.1
/man/iex.1
/rel/elixir
/Docs-v*.zip
/Precompiled-v*.zip
/.eunit
/.release
.elixir.plt
erl_crash.dump
+11 -43
View File
@@ -1,47 +1,15 @@
language: bash
language: erlang
otp_release:
- 18.0
sudo: false
env:
global:
- ELIXIR_ASSERT_TIMEOUT=2000
matrix:
- OTP_RELEASE=OTP-22.0 CHECK_REPRODUCIBLE=true CHECK_POSIX_COMPLIANT=true
- OTP_RELEASE=OTP-21.3.8
- OTP_RELEASE=OTP-21.2
- OTP_RELEASE=OTP-21.1
- OTP_RELEASE=OTP-21.0
- OTP_RELEASE=OTP-20.3
- OTP_RELEASE=OTP-20.2
- OTP_RELEASE=OTP-20.1
- OTP_RELEASE=OTP-20.0
- OTP_RELEASE=maint
- OTP_RELEASE=master
script: "make compile && rm -rf .git && make test"
matrix:
fast_finish: true
allow_failures:
- env: OTP_RELEASE=maint
- env: OTP_RELEASE=master
notifications:
irc: "irc.freenode.org#elixir-lang"
recipients:
- jose.valim@plataformatec.com.br
- eric.meadows.jonsson@gmail.com
install:
- wget -O otp.tar.gz https://repo.hex.pm/builds/otp/ubuntu-14.04/${OTP_RELEASE}.tar.gz
- mkdir -p otp
- tar zxf otp.tar.gz -C otp --strip-components=1
- otp/Install -minimal $(pwd)/otp
- PATH=$(pwd)/otp/bin:$PATH
script:
- rm -rf .git
- ELIXIRC_OPTS="--warnings-as-errors" ERLC_OPTS="+warning_as_errors" make compile
- make test
- dialyzer -pa lib/elixir/ebin --build_plt --output_plt elixir.plt --apps lib/elixir/ebin/elixir.beam lib/elixir/ebin/Elixir.Kernel.beam
# Check for reproducible builds only in the latest OTP release
- if [ -n "$CHECK_REPRODUCIBLE" ]; then make check_reproducible; fi
# Check for POSIX compliant shell scripts
- if [ -n "$CHECK_POSIX_COMPLIANT" ]; then
shellcheck -e SC2039,2086 bin/elixir && echo "bin/elixir is POSIX compliant";
shellcheck bin/elixirc && echo "bin/elixirc is POSIX compliant";
shellcheck bin/iex && echo "bin/iex is POSIX compliant";
fi
+153 -223
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@@ -1,295 +1,225 @@
# Changelog for Elixir v1.9
# Changelog for Elixir v1.2
## Releases
v1.2 brings enhancements, bug fixes, performance improvements and more
into Elixir. Elixir v1.2 relies on many features in Erlang 18, requiring
at least Erlang 18+. Upgrading to Erlang 18 is therefore necessary before
upgrading Elixir.
The main feature in Elixir v1.9 is the addition of releases. A release is a self-contained directory that consists of your application code, all of its dependencies, plus the whole Erlang Virtual Machine (VM) and runtime. Once a release is assembled, it can be packaged and deployed to a target as long as the target runs on the same operating system (OS) distribution and version as the machine running the `mix release` command.
## Erlang 18 support
You can start a new project and assemble a release for it in three easy steps:
We have brought many features specific to Erlang 18. Here are the highlights:
$ mix new my_app
$ cd my_app
$ MIX_ENV=prod mix release
* Maps can now scale from dozens to millions of keys. Therefore, usage of
the modules `Dict` and `HashDict` is now discouraged and will be
deprecated in future releases, instead use `Map`. Similarly, `Set` and
`HashSet` will be deprecated in favor of `MapSet`
* Compilation times are faster due to improvements in both the Elixir and
Erlang compilers
* Dialyzer now emits less false negative warnings thanks to new annotations
available in the Erlang compiler
A release will be assembled in `_build/prod/rel/my_app`. Inside the release, there will be a `bin/my_app` file which is the entry point to your system. It supports multiple commands, such as:
## Language improvements
* `bin/my_app start`, `bin/my_app start_iex`, `bin/my_app restart`, and `bin/my_app stop` - for general management of the release
This release includes four notable language improvements:
* `bin/my_app rpc COMMAND` and `bin/my_app remote` - for running commands on the running system or to connect to the running system
* The addition of multi aliases/imports/require:
* `bin/my_app eval COMMAND` - to start a fresh system that runs a single command and then shuts down
alias MyApp.{Foo, Bar, Baz}
* `bin/my_app daemon` and `bin/my_app daemon_iex` - to start the system as a daemon on Unix-like systems
* Support for variables in map keys:
* `bin/my_app install` - to install the system as a service on Windows machines
%{key => value}
### Why releases?
* Support for the pin operator in map keys and function clauses:
Releases allow developers to precompile and package all of their code and the runtime into a single unit. The benefits of releases are:
%{^key => value} = %{key => value}
fn ^key -> :ok end
* Code preloading. The VM has two mechanisms for loading code: interactive and embedded. By default, it runs in the interactive mode which dynamically loads modules when they are used for the first time. The first time your application calls `Enum.map/2`, the VM will find the `Enum` module and load it. There’s a downside. When you start a new server in production, it may need to load many other modules, causing the first requests to have an unusual spike in response time. Releases run in embedded mode, which loads all available modules upfront, guaranteeing your system is ready to handle requests after booting.
* Addition of the `with` special form to match on multiple expressions:
* Configuration and customization. Releases give developers fine grained control over system configuration and the VM flags used to start the system.
with {:ok, contents} <- File.read("my_file.ex"),
{res, binding} <- Code.eval_string(contents),
do: {:ok, res}
* Self-contained. A release does not require the source code to be included in your production artifacts. All of the code is precompiled and packaged. Releases do not even require Erlang or Elixir in your servers, as they include the Erlang VM and its runtime by default. Furthermore, both Erlang and Elixir standard libraries are stripped to bring only the parts you are actually using.
These improvements aim to make the language more consistent and expressive.
* Multiple releases. You can assemble different releases with different configuration per application or even with different applications altogether.
## Getting started experience
### Hooks and Configuration
While we were improving the language, we also improved both the parser and
compiler to be even more aware of language constructs, emitting warnings
on common pitfalls like when piping to expressions without parentheses or
when defining unsafe variables.
Releases also provide built-in hooks for configuring almost every need of the production system:
We have also introduced the `i/1` helper in IEx, which allows developers
to retrieve information about any data type. This will help newcomers
explore the language values while providing experienced developers with
crucial information about the value they are introspecting.
* `config/config.exs` (and `config/prod.exs`) - provides build-time application configuration, which is executed when the release is assembled
## Workflow improvements
* `config/releases.exs` - provides runtime application configuration. It is executed every time the release boots and is further extensible via config providers
Umbrella applications are now able to share both build and configuration files.
This aims to drastically reduce compilation times in umbrella projects by
adding the following configuration to each umbrella app's `mix.exs` file:
* `rel/vm.args.eex` - a template file that is copied into every release and provides static configuration of the Erlang Virtual Machine and other runtime flags
build_path: "../../_build",
config_path: "../../config/config.exs",
* `rel/env.sh.eex` and `rel/env.bat.eex` - template files that are copied into every release and executed on every command to set up environment variables, including ones specific to the VM, and the general environment
Finally, Mix will now consolidate protocols by default as we are now able to
consolidate in parallel and cache the consolidation results, providing the
best performance across all environments without affecting compilation times.
The only downside of this change is that, if you have been implementing
protocols exclusively as part of your test suite, inside the `test` directory,
those won't be picked up as it happens after compilation. For such cases,
consolidation can be disabled by setting `consolidate_protocols: false` in
the project config.
We have written extensive documentation on releases, so we recommend checking it out for more information.
These are great additions on top of the faster compilation times we have
achieved when migrating to Erlang 18.
## Configuration overhaul
## Rebar 3 support
A new `Config` module has been added to Elixir. The previous configuration API, `Mix.Config`, was part of the Mix build tool. But since releases provide runtime configuration and Mix is not included in releases, we ported the `Mix.Config` API to Elixir. In other words, `use Mix.Config` has been soft-deprecated in favor of `import Config`.
With Rebar 3 gaining more adoption in the Erlang community, Mix is
now able to fetch and compile Rebar 3 dependencies. This feature is currently
experimental and therefore opt-in: if you have a Rebar 3 dependency, you can
ask Mix to use Rebar 3 to compile it by passing the `manager: :rebar3` option.
Once configured, Mix will prompt you to install Rebar 3 if it is not yet
available.
Another important change related to configuration is that `mix new` will no longer generate a `config/config.exs` file. [Relying on configuration is undesired for most libraries](https://hexdocs.pm/elixir/library-guidelines.html#avoid-application-configuration) and the generated config files pushed library authors in the wrong direction. Furthermore, `mix new --umbrella` will no longer generate a configuration for each child app, instead all configuration should be declared in the umbrella root. That's how it has always behaved, we are now making it explicit.
## Other enhancements
There are many other enhancements. The Elixir CLI got a handful of new options in order to best support releases. `Logger` now computes its sync/async/discard thresholds in a decentralized fashion, reducing contention. `EEx` templates support more complex expressions than before. Finally, there is a new `~U` sigil for working with UTC DateTimes as well as new functions in the `File`, `Registry`, and `System` modules.
## v1.9.4 (2019-11-05)
### 1. Bug fixes
#### Mix
* [mix local.hex] Remove invalid deprecation warning on `mix local.hex` command
## v1.9.3 (2019-11-05)
Note this release deprecates the use of URLs on `mix archive.install`, `mix escript.install`, and `mix local.rebar`. Support for passing URLs to said commands will be fully removed on Elixir v1.10, as they are unsafe. Thanks to Bram Verburg for the report and for providing a fix.
The alternative is straight-forward: you can simply download the artifact via the command line and then invoke the command with a file system path. For example, instead of:
$ mix archive.install https://example.org/installer.ez
You can execute on Unix (Linux, MacOS X):
$ wget https://example.org/installer.ez
$ mix archive.install installer.ez
or
$ curl -o installer.ez https://example.org/installer.ez
$ mix archive.install installer.ez
On Windows (Win7 or later):
> powershell -Command "Invoke-WebRequest https://example.org/installer.ez -OutFile installer.ez"
> mix archive.install installer.ez
or
> powershell -Command "(New-Object Net.WebClient).DownloadFile('https://example.org/installer.ez', 'installer.ez')"
> mix archive.install installer.ez
Note that, if you are a library author, consider providing installable escripts and archives through Hex, such as Phoenix:
$ mix archive.install hex phx_new
Installations through Hex are always safe and they come with version management and all other benefits from Hex too.
## v1.2.2
### 1. Enhancements
#### Mix
* [mix release] Add :tar option for releases to create a tarball
* [Kernel] Support `@compile {:autoload, false}` to disable automatic loading after compilation
### 2. Bug fixes
#### Mix
* [ExUnit] Raise if trying to override reserved tag in `setup` blocks
* [Mix] Ensure retrieve compile manifests do fail if some compilers are not yet available
* [Mix] Automatically merge managers according to the mix > rebar3 > rebar > make order
* [Mix] Force recompilation if dependency was recently fetched
* [mix release] Use `default_release` option when name is not given
* [mix release] Make release's boot script contents deterministic
### 3. Deprecations
#### Mix
* [mix archive.install] Warn when installing from URI
* [mix escript.install] Warn when installing from URI
* [mix local.rebar] Warn when installing from URI
## v1.9.2 (2019-10-12)
## v1.2.1 (2016-01-14)
### 1. Enhancements
#### Mix
* [mix release] Allow `{:from_app, app_name}` as a version for releases
* [IEx] Support remote pids/ports with IEx helper `i/1`
* [Protocol] Warn when `defimpl` is called for a consolidated protocol
### 2. Bug fixes
#### Elixir
* [ExUnit] Ensure `assert` macros can be used from quoted code
* [ExUnit] Do not warn in match assertion if variable is reused in pattern
* [Macro] Fix a bug in `Macro.to_string/1` where a remote function could be accidentally interpreted as a sigil
* [Mix] Ensure dependencies are properly skipped when `--only` option is given to `mix deps.get`
* [Kernel] Ensure compilation works for a variable named `super`
* [Kernel] Ensure capture operator of a local function expands correctly inside a macro
* [Regex] Ensure dynamic recompilation of regexes considers options. This fixes an issue where parsing the protocol in `URI.parse/1` seemingly looked case sensitive when running Elixir precompiled on another machine
#### Mix
* [mix release] Use `Base.encode32` when generating cookie to avoid unsafe chars
* [mix release] Fix `install` command on Windows
* [mix release] Quote executable path on Windows to ensure it works on directories with spaces
## v1.9.1 (2019-07-18)
## v1.2.0 (2016-01-01)
### 1. Enhancements
#### Mix
* [mix format] Print relative paths in `--check-formatted` output
* [mix release] Support included applications
### 2. Bug fixes
#### Elixir
* [Code] Fix formatter wrongly removing nested parens in nested calls
#### Logger
* [Logger] Do not crash translator on poorly formatted supervisor names
#### Mix
* [mix compile] Raise readable error for mismatched sources during compilation
* [mix release] Preserve UTF8 encoding in release config files
## v1.9.0 (2019-06-24)
### 1. Enhancements
#### EEx
* [EEx] Allow more complex mixed expressions when tokenizing
#### Elixir
* [Access] Allow `Access.at/1` to handle negative index
* [CLI] Add support for `--boot`, `--boot-var`, `--erl-config`, `--pipe-to`, `--rpc-eval`, and `--vm-args` options
* [Code] Add `static_atom_encoder` option to `Code.string_to_quoted/2`
* [Code] Support `:force_do_end_blocks` on `Code.format_string!/2` and `Code.format_file!/2`
* [Code] Do not raise on deadlocks on `Code.ensure_compiled/1`
* [Config] Add `Config`, `Config.Reader`, and `Config.Provider` modules for working with configuration
* [File] Add `File.rename!/2`
* [Inspect] Add `:inspect_fun` and `:custom_options` to `Inspect.Opts`
* [Kernel] Add `~U` sigil for UTC date times
* [Kernel] Optimize `&super/arity` and `&super(&1)`
* [Kernel] Optimize generated code for `with` with a catch-all clause
* [Kernel] Validate `__struct__` key in map returned by `__struct__/0,1`
* [Module] Add `Module.get_attribute/3`
* [Protocol] Improve `Protocol.UndefinedError` messages to also include the type that was attempted to dispatch on
* [Protocol] Optimize performance of dynamic dispatching for non-consolidated protocols
* [Record] Include field names in generated type for records
* [Regex] Automatically recompile regexes
* [Registry] Add `Registry.select/2`
* [System] Add `System.restart/0`, `System.pid/0` and `System.no_halt/1`
* [System] Add `System.get_env/2`, `System.fetch_env/1`, and `System.fetch_env!/1`
* [System] Support `SOURCE_DATE_EPOCH` for reproducible builds
* [Application] Add `spec/1` and `spec/2` to retrieve application specification
* [Application] Add `get_application/1` to retrieve the application a given module belongs to
* [Base] Optimize encode and decode operations about 10 times
* [Enum] Use the faster and auto-seeding `:rand` instead of `:random` in `Enum.shuffle/1` and `Enum.random/1` and `Enum.take_random/2`
* [Enum] Add `Enum.with_index/2`
* [GenServer] Add `GenServer.stop/1` for shutting down servers reliably
* [IO] Add `color` related functions to `IO.ANSI`
* [Kernel] Support multiple aliases in `alias`, `import`, `require` and `use`. For example, `alias MyApp.{Foo, Bar, Baz}`
* [Kernel] Add `struct!/2`. Similar to `struct/2` but raises on invalid keys
* [Kernel] Warn if `@doc/@typedoc/@moduledoc` attributes are redefined
* [Kernel] Warn if non-variables are used in `defdelegate/2` (as they have no effect)
* [Kernel] Mark quoted expressions as generated, avoiding false positives on dialyzer
* [Kernel] Allow variables as map keys on creation `%{key => value}` and on matches `%{^key => value}`
* [Kernel] Allow the pin operator `^` in `fn` clauses and on the left side of `<-` in `for` comprehensions
* [Kernel] Introduce `with` as a special form that allows matching on right side parameters
* [Kernel] Warn when right hand side of `->` does not provide any expression
* [Kernel] Warn if the Elixir was compiled with a different endianness than the one currently available at runtime
* [Kernel] Warn if a variable is used after being defined exclusively in a nested context
* [Kernel] Warn if piping into an expression without parentheses
* [Macro] Add `Macro.traverse/4` that performs pre and post-walk at once
* [Macro] Add `Macro.camelize/1` and `Macro.underscore/1`
* [Process] Add `Process.get_keys/0`
* [Stream] Add `Stream.with_index/2`
* [String] Introduce `String.replace_{prefix,suffix,leading,trailing}/2`. The first two will replace only the first occurrence of the given match in string. The last two will replace all occurrences of the given match
* [String] Support `String.normalize/2` and `String.equivalent?/2` that perform NFD and NFC normalization
* [System] Add `System.time_offset`, `System.monotonic_time`, `System.system_time`, `System.convert_time_unit` and `System.unique_integer`
* [System] Allow `System.cmd/3` to remove variables by specifying nil values
* [Task] Add `Task.Supervisor.async_nolink/1/3` that spawns a supervised task without linking to the caller process
* [Task] Introduce `Task.yield_many/2`
* [Task] Raise an error when a task is queried from a non-owning process (instead of waiting forever)
#### ExUnit
* [ExUnit] Allow multiple `:exclude` on configuration/CLI
* [ExUnit.DocTest] No longer wrap doctest errors in custom exceptions. They ended-up hiding more information than showing
* [ExUnit.DocTest] Display the actual doctest code when doctest fails
* [ExUnit] Allow one test to raise multiple errors. The goal is to enable tools in the ecosystem to emit multiple failure reports from the same test
* [ExUnit] Support `@tag report: [:foo, :bar]` which will include the values for tags `:foo` and `:bar` whenever a test fails
#### IEx
* [IEx.CLI] Copy ticktime from remote node on IEx `--remsh`
* [IEx.CLI] Automatically add a host on node given to `--remsh`
* [IEx] Allow `IEX_WITH_WERL` to be set on Windows to always run on WERL mode
* [IEx] Display type docs for `t(Module.type)` and `t(Module.type/arity)`
* [IEx] Add `i/1` helper that prints information about any data type
* [IEx] Show source code snippet whenever there is a request to pry a given process
#### Logger
* [Logger] Use a decentralized mode computation for Logger which allows overloads to be detected more quickly
* [Logger] Use `persistent_term` to store configuration whenever available for performance
* [Logger] Add file to logger metadata
#### Mix
* [Mix] Follow XDG base dir specification in Mix for temporary and configuration files
* [Mix.Generator] Add `copy_file/3`, `copy_template/4`, and `overwite?/2`
* [Mix.Project] Add `preferred_cli_target` that works like `preferred_cli_env`
* [mix archive.uninstall] Allow `mix archive.uninstall APP` to uninstall any installed version of APP
* [mix new] No longer generate a `config/` directory for mix new
* [mix release] Add support for releases
* [mix release.init] Add templates for release configuration
* [mix test] Allow running tests for a given umbrella app from the umbrella root with `mix test apps/APP/test`. Test failures also include the `apps/APP` prefix in the test location
* [Mix] Cache and always consolidate protocols
* [Mix] Add `warn_test_pattern` to `mix test` that will warn on potentially misconfigured test files
* [Mix] Introduce `MIX_QUIET` environment variable that configures the underlying Mix task to output only error messages
* [Mix] Introduce `MIX_DEBUG` environment variable that prints information about the task being run
* [Mix] Validate git options and warn on conflicting ref, branch or tags
* [Mix] New umbrella applications will now share configuration and build files
* [Mix] Add experimental support for Rebar 3
* [Mix] Do not warn when an optional dependency has a conflicting `:only` option with another dependency
* [Mix] Raise readable error message when parsertools is not available
* [Mix] Add `--build` flag to `mix deps.clean DEP` to only remove artifacts from `_build`
### 2. Bug fixes
#### EEx
#### Kernel
* [EEx] Consistently trim newlines when you have a single EEx expression per line on multiple lines
#### Elixir
* [Code] Quote `::` in `Code.format_string!/1` to avoid ambiguity
* [Code] Do not crash formatter on false positive sigils
* [Enum] Ensure the first equal entry is returned by `Enum.min/2` and `Enum.max/2`
* [Kernel] Improve error message when string interpolation is used in a guard
* [Kernel] Properly merge and handle docs for callbacks with multiple clauses
* [Kernel] Guarantee reproducible builds on modules with dozens of specs
* [Kernel] Resolve `__MODULE__` accordingly in nested `defmodule` to avoid double nesting
* [Kernel] Type variables starting with an underscore (`_foo`) should not raise compile error
* [Kernel] Keep order of elements when macro `in/2` is expanded with a literal list on the right-hand side
* [Kernel] Print proper location on undefined function error from dynamically generated functions
* [Kernel] **Potentially breaking** Do not leak aliases when nesting module definitions that are fully namespaced modules. If you defined `defmodule Elixir.Foo.Bar` inside `defmodule Foo`, previous Elixir versions would automatically define an alias, but fully namespaced modules such as `Elixir.Foo.Bar` should never define or require an alias. If you were accidentally relying on this broken behaviour, your code may no longer work
* [System] Make sure `:init.get_status/0` is set to `{:started, :started}` once the system starts
* [Path] Do not expand `~` in `Path.expand/2` when not followed by a path separator
* [Protocol] Ensure `debug_info` is kept in protocols
* [Regex] Ensure inspect returns valid `~r//` expressions when they are manually compiled with backslashes
* [Registry] Fix ETS leak in `Registry.register/2` for already registered calls in unique registries while the process is still alive
#### ExUnit
* [ExUnit] Raise error if attempting to run single line tests on multiple files
* [ExUnit] Return proper error on duplicate child IDs on `start_supervised`
* [Access] Improve error messages when using Access on non-valid key-value structures
* [Kernel] Raise when conflicting `:only` and `:except` are given to import
* [Kernel] Change `__ENV__.file` if `@file` is set for the given function
* [Kernel] Make `Kernel.ParallelRequire` aware of `:warning_as_errors`
* [Kernel] Improve error message for invalid `do`/`do:`
* [Macro] Ensure `Macro.to_string/2` respects operator precedence when using the access operator
* [Path] Do not crash when expanding paths that go beyond the root, for example, `Path.expand("/../..")`
* [String] Ensure `UnicodeConversionError` does not contain invalid string in its error message
#### IEx
* [IEx] Automatically shut down IEx if we receive EOF
#### Logger
* [Logger] Don't discard Logger messages from other nodes as to leave a trail on both systems
* [IEx] Do not start apps on `recompile` helper if `--no-start` was given
* [IEx] Avoid copying of data when evaluating every expression in IEx
#### Mix
* [mix compile] Ensure Erlang-based Mix compilers (erlang, leex, yecc) set valid position on diagnostics
* [mix compile] Ensure compilation halts in an umbrella project if one of the siblings fail to compile
* [mix deps] Raise an error if the umbrella app's dir name and `mix.exs` app name don't match
* [mix deps.compile] Fix subcommand splitting bug in rebar3
* [mix test] Do not consider modules that are no longer cover compiled when computing coverage report, which could lead to flawed reports
* [Mix] Always run non-recursive tasks at the umbrella root
* [Mix] Ensure rebar projects work on directory names that contain non-latin characters
* [Mix] Ignore directories inside `apps` in umbrellas that do not have a `mix.exs` file
* [Mix] Ensure Mix can be used with path dependencies where the app name is different than the path basename
* [Mix] Ensure dependencies won't crash when updating from a git repository to a hex repository and the git version did not respect SemVer
* [Mix] Do not run remote converger if dependencies have diverged
* [Mix] Ensure umbrella dependencies across all environments are loaded on parent deps.get/deps.update
### 3. Soft-deprecations (no warnings emitted)
#### ExUnit
* [ExUnit] Include file and line in all compilation errors for doctests
### 3. Soft deprecations (no warnings emitted)
#### Kernel
* [Dict] `Dict` and `HashDict` are soft deprecated in favor of `Map`
* [Keyword] `Keyword.size/1` is deprecated in favor of `length/1`
* [Map] `Map.size/1` is deprecated in favor of `map_size/1`
* [Set] `Set` and `HashSet` are soft deprecated in favor of `MapSet`
#### Mix
* [Mix.Config] `Mix.Config` has been deprecated in favor of the `Config` module that now ships as part of Elixir itself. Reading configuration files should now be done by the `Config.Reader` module
* [Mix] `Mix.Utils.camelize/1` and `Mix.Utils.underscore/1` are soft deprecated in favor of `Macro.camelize/1` and `Macro.underscore/1`
### 4. Hard-deprecations
#### Elixir
* [CLI] Deprecate `--detached` option, use `--erl "-detached"` instead
* [Map] Deprecate Enumerable keys in `Map.drop/2`, `Map.split/2`, and `Map.take/2`
* [String] The `:insert_replaced` option in `String.replace/4` has been deprecated. Instead you may pass a function as a replacement or use `:binary.replace/4` if you need to support earlier Elixir versions
#### Mix
* [Mix.Project] Deprecate `Mix.Project.load_paths/1` in favor of `Mix.Project.compile_path/1`
## v1.8
The CHANGELOG for v1.8 releases can be found [in the v1.8 branch](https://github.com/elixir-lang/elixir/blob/v1.8/CHANGELOG.md).
+14 -52
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# Code of Conduct
# Contributor Code of Conduct
Contact: elixir-lang-conduct@googlegroups.com
As contributors and maintainers of this project, and in the interest of fostering an open and welcoming community, we pledge to respect all people who contribute through reporting issues, posting feature requests, updating documentation, submitting pull requests or patches, and other activities.
## Why have a Code of Conduct?
We are committed to making participation in this project a harassment-free experience for everyone, regardless of level of experience, gender, gender identity and expression, sexual orientation, disability, personal appearance, body size, race, ethnicity, age, religion, or nationality.
As contributors and maintainers of this project, we are committed to providing a friendly, safe and welcoming environment for all, regardless of age, disability, gender, nationality, race, religion, sexuality, or similar personal characteristic.
Examples of unacceptable behavior by participants include:
The goal of the Code of Conduct is to specify a baseline standard of behavior so that people with different social values and communication styles can talk about Elixir effectively, productively, and respectfully, even in face of disagreements. The Code of Conduct also provides a mechanism for resolving conflicts in the community when they arise.
* The use of sexualized language or imagery
* Personal attacks
* Trolling or insulting/derogatory comments
* Public or private harassment
* Publishing other's private information, such as physical or electronic addresses, without explicit permission
* Other unethical or unprofessional conduct.
## Our Values
The Elixir Core Team has the right and responsibility to remove, edit, or reject comments, commits, code, wiki edits, issues, and other contributions that are not aligned to this Code of Conduct. By adopting this Code of Conduct, we commit ourselves to fairly and consistently applying these principles to every aspect of managing this project. Project maintainers who do not follow or enforce the Code of Conduct may be permanently removed from the project team.
These are the values Elixir developers should aspire to:
This code of conduct applies both within project spaces and in public spaces when an individual is representing the project or its community.
* Be friendly and welcoming
* Be patient
* Remember that people have varying communication styles and that not everyone is using their native language. (Meaning and tone can be lost in translation.)
* Be thoughtful
* Productive communication requires effort. Think about how your words will be interpreted.
* Remember that sometimes it is best to refrain entirely from commenting.
* Be respectful
* In particular, respect differences of opinion. It is important that we resolve disagreements and differing views constructively.
* Avoid destructive behavior
* Derailing: stay on topic; if you want to talk about something else, start a new conversation.
* Unconstructive criticism: don't merely decry the current state of affairs; offer (or at least solicit) suggestions as to how things may be improved.
* Snarking (pithy, unproductive, sniping comments).
Instances of abusive, harassing, or otherwise unacceptable behavior may be reported by sending an e-mail to elixir-lang-conduct@googlegroups.com.
The following actions are explicitly forbidden:
* Insulting, demeaning, hateful, or threatening remarks.
* Discrimination based on age, disability, gender, nationality, race, religion, sexuality, or similar personal characteristic.
* Bullying or systematic harassment.
* Unwelcome sexual advances.
* Incitement to any of these.
## Where does the Code of Conduct apply?
If you participate in or contribute to the Elixir ecosystem in any way, you are encouraged to follow the Code of Conduct while doing so.
Explicit enforcement of the Code of Conduct applies to the official mediums operated by the Elixir project:
* The [official GitHub projects][1] and code reviews.
* The official elixir-lang mailing lists.
* The **[#elixir-lang][2]** IRC channel on [Freenode][3].
Other Elixir activities (such as conferences, meetups, and unofficial forums) are encouraged to adopt this Code of Conduct. Such groups must provide their own contact information.
Project maintainers may remove, edit, or reject comments, commits, code, wiki edits, issues, and other contributions that are not aligned to this Code of Conduct.
Instances of abusive, harassing, or otherwise unacceptable behavior may be reported by emailing: elixir-lang-conduct@googlegroups.com. All complaints will be reviewed and investigated and will result in a response that is deemed necessary and appropriate to the circumstances. **All reports will be kept confidential**.
**The goal of the Code of Conduct is to resolve conflicts in the most harmonious way possible**. We hope that in most cases issues may be resolved through polite discussion and mutual agreement. Bannings and other forceful measures are to be employed only as a last resort. **Do not** post about the issue publicly or try to rally sentiment against a particular individual or group.
## Acknowledgements
This document was based on the Code of Conduct from the Go project with parts derived from Django's Code of Conduct, Rust's Code of Conduct and the Contributor Covenant.
[1]: https://github.com/elixir-lang/
[2]: https://webchat.freenode.net/?channels=#elixir-lang
[3]: https://www.freenode.net
This Code of Conduct is adapted from the [Contributor Covenant](http://contributor-covenant.org), version 1.2.0, available at [http://contributor-covenant.org/version/1/2/0/](http://contributor-covenant.org/version/1/2/0/)
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# Contributing to Elixir
Please take a moment to review this document in order to make the contribution
process easy and effective for everyone involved!
Also make sure you read our [Code of Conduct](CODE_OF_CONDUCT.md) that
outlines our commitment towards an open and welcoming environment.
## Using the issue tracker
Use the issues tracker for:
* [bug reports](#bug-reports)
* [submitting pull requests](#pull-requests)
Please **do not** use the issue tracker for personal support requests nor feature requests. Support requests should be sent to:
* [the elixir-talk mailing list](https://groups.google.com/group/elixir-lang-talk)
* [Stack Overflow](http://stackoverflow.com/questions/ask?tags=elixir)
* **[#elixir-lang](irc://chat.freenode.net/elixir-lang)** IRC channel on [chat.freenode.net](http://www.freenode.net/)
Feature requests can be discussed on [the elixir-core mailing list](https://groups.google.com/group/elixir-lang-core).
We do our best to keep the issue tracker tidy and organized, making it useful
for everyone. For example, we classify open issues per application and perceived
difficulty of the issue, making it easier for developers to
[contribute to Elixir](#contributing).
## Bug reports
A bug is a _demonstrable problem_ that is caused by the code in the repository.
Good bug reports are extremely helpful - thank you!
Guidelines for bug reports:
1. **Use the GitHub issue search** &mdash; [check if the issue has already been
reported](https://github.com/elixir-lang/elixir/search?type=Issues).
2. **Check if the issue has been fixed** &mdash; try to reproduce it using the
`master` branch in the repository.
3. **Isolate and report the problem** &mdash; ideally create a reduced test
case.
Please try to be as detailed as possible in your report. Include information about
your Operating System, your Erlang and Elixir versions. Please provide steps to
reproduce the issue as well as the outcome you were expecting! All these details
will help developers to fix any potential bugs.
Example:
> Short and descriptive example bug report title
>
> A summary of the issue and the environment in which it occurs. If suitable,
> include the steps required to reproduce the bug.
>
> 1. This is the first step
> 2. This is the second step
> 3. Further steps, etc.
>
> `<url>` - a link to the reduced test case (e.g. a GitHub Gist)
>
> Any other information you want to share that is relevant to the issue being
> reported. This might include the lines of code that you have identified as
> causing the bug, and potential solutions (and your opinions on their
> merits).
## Feature requests
Feature requests are welcome and should be discussed on [the elixir-core mailing list](https://groups.google.com/group/elixir-lang-core). But take a moment to find
out whether your idea fits with the scope and aims of the project. It's up to *you*
to make a strong case to convince the community of the merits of this feature.
Please provide as much detail and context as possible.
## Contributing
We incentivize everyone to contribute to Elixir and help us tackle
existing issues! To do so, there are a few things you need to know
about the code. First, Elixir code is divided in applications inside
the `lib` folder:
* `elixir` - Contains Elixir's kernel and stdlib
* `eex` - Template engine that allows you to embed Elixir
* `ex_unit` - Simple test framework that ships with Elixir
* `iex` - IEx, Elixir's interactive shell
* `mix` - Elixir's build tool
You can run all tests in the root directory with `make test` and you can
also run tests for a specific framework `make test_#{NAME}`, for example,
`make test_ex_unit`.
In case you are changing a single file, you can compile and run tests only
for that particular file for fast development cycles. For example, if you
are changing the String module, you can compile it and run its tests as:
```sh
bin/elixirc lib/elixir/lib/string.ex -o lib/elixir/ebin
bin/elixir lib/elixir/test/elixir/string_test.exs
```
After your changes are done, please remember to run the full suite with
`make test`.
From time to time, your tests may fail in an existing Elixir checkout and
may require a clean start by running `make clean compile`. You can always
check [the official build status on Travis-CI](https://travis-ci.org/elixir-lang/elixir).
With tests running and passing, you are ready to contribute to Elixir and
send your pull requests.
## Contributing Documentation
Code documentation (`@doc`, `@moduledoc`, `@typedoc`) has a special convention:
the first paragraph is considered to be a short summary.
For functions, macros and callbacks say what it will do. For example write
something like:
```elixir
@doc """
Returns only those elements for which `fun` is `true`.
...
"""
def filter(collection, fun) ...
```
For modules, protocols and types say what it is. For example write
something like:
```elixir
defmodule File.Stat do
@moduledoc """
Information about a file.
...
"""
defstruct [...]
end
```
Keep in mind that the first paragraph might show up in a summary somewhere, long
texts in the first paragraph create very ugly summaries. As a rule of thumb
anything longer than 80 characters is too long.
Try to keep unnecessary details out of the first paragraph, it's only there to
give a user a quick idea of what the documented "thing" does/is. The rest of the
documentation string can contain the details, for example when a value and when
`nil` is returned.
If possible include examples, preferably in a form that works with doctests. For
example:
```elixir
@doc """
Returns only those elements for which `fun` is `true`.
## Examples
iex> Enum.filter([1, 2, 3], fn(x) -> rem(x, 2) == 0 end)
[2]
"""
def filter(collection, fun) ...
```
This makes it easy to test the examples so that they don't go stale and examples
are often a great help in explaining what a function does.
## Pull requests
Good pull requests - patches, improvements, new features - are a fantastic
help. They should remain focused in scope and avoid containing unrelated
commits.
**NOTE**: Do not send code style changes as pull requests like changing
the indentation of some particular code snippet or how a function is called.
Those will not be accepted as they pollute the repository history with non
functional changes and are often based on personal preferences.
**IMPORTANT**: By submitting a patch, you agree that your work will be
licensed under the license used by the project.
If you have any large pull request in mind (e.g. implementing features,
refactoring code, etc), **please ask first** otherwise you risk spending
a lot of time working on something that the project's developers might
not want to merge into the project.
Please adhere to the coding conventions in the project (indentation,
accurate comments, etc.) and don't forget to add your own tests and
documentation. When working with Git, we recommend the following process
in order to craft an excellent pull request:
1. [Fork](https://help.github.com/fork-a-repo/) the project, clone your fork,
and configure the remotes:
```sh
# Clone your fork of the repo into the current directory
git clone https://github.com/<your-username>/elixir
# Navigate to the newly cloned directory
cd elixir
# Assign the original repo to a remote called "upstream"
git remote add upstream https://github.com/elixir-lang/elixir
```
2. If you cloned a while ago, get the latest changes from upstream:
```sh
git checkout master
git pull upstream master
```
3. Create a new topic branch (off of `master`) to contain your feature, change,
or fix.
**IMPORTANT**: Making changes in `master` is discouraged. You should always
keep your local `master` in sync with upstream `master` and make your
changes in topic branches.
```sh
git checkout -b <topic-branch-name>
```
4. Commit your changes in logical chunks. Keep your commit messages organized,
with a short description in the first line and more detailed information on
the following lines. Feel free to use Git's
[interactive rebase](https://help.github.com/articles/interactive-rebase)
feature to tidy up your commits before making them public.
5. Make sure all the tests are still passing.
```sh
make test
```
This command will compile the code in your branch and use that
version of Elixir to run the tests. This is needed to ensure your changes can
pass all the tests.
6. Push your topic branch up to your fork:
```sh
git push origin <topic-branch-name>
```
7. [Open a Pull Request](https://help.github.com/articles/using-pull-requests/)
with a clear title and description.
8. If you haven't updated your pull request for a while, you should consider
rebasing on master and resolving any conflicts.
**IMPORTANT**: _Never ever_ merge upstream `master` into your branches. You
should always `git rebase` on `master` to bring your changes up to date when
necessary.
```sh
git checkout master
git pull upstream master
git checkout <your-topic-branch>
git rebase master
```
We have saved some excellent pull requests we have received in the past in case
you are looking for some examples:
* [Implement Enum.member? – Pull Request](https://github.com/elixir-lang/elixir/pull/992)
* [Add String.valid? – Pull Request](https://github.com/elixir-lang/elixir/pull/1058)
* [Implement capture_io for ExUnit – Pull Request](https://github.com/elixir-lang/elixir/pull/1059)
Thank you for your contributions!
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### Precheck
* Do not use the issue tracker for help or support (try Elixir Forum, Stack Overflow, IRC, etc.)
* For proposing a new feature, please start a discussion on the Elixir Core mailing list: https://groups.google.com/group/elixir-lang-core
* For bugs, do a quick search and make sure the bug has not yet been reported
* Please disclose security vulnerabilities privately at elixir-security@googlegroups.com
* Finally, be nice and have fun!
### Environment
* Elixir & Erlang/OTP versions (elixir --version):
* Operating system:
### Current behavior
Include code samples, errors and stacktraces if appropriate.
### Expected behavior
A short description on how you expect the code to behave.
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Apache License
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http://www.apache.org/licenses/
Copyright 2012 Plataformatec
TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION
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You may obtain a copy of the License at
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+76 -136
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@@ -1,42 +1,39 @@
REBAR ?= "$(CURDIR)/rebar"
PREFIX ?= /usr/local
SHARE_PREFIX ?= $(PREFIX)/share
MAN_PREFIX ?= $(SHARE_PREFIX)/man
CANONICAL := v1.9/ # master/ or vMAJOR.MINOR/
ELIXIRC := bin/elixirc --verbose --ignore-module-conflict $(ELIXIRC_OPTS)
ERLC := erlc -I lib/elixir/include $(ERLC_OPTS)
DOCS := v1.2
ELIXIRC := bin/elixirc --verbose --ignore-module-conflict
ERLC := erlc -I lib/elixir/include
ERL := erl -I lib/elixir/include -noshell -pa lib/elixir/ebin
GENERATE_APP := $(CURDIR)/lib/elixir/generate_app.escript
VERSION := $(strip $(shell cat VERSION))
Q := @
LIBDIR := lib
BINDIR := bin
INSTALL = install
INSTALL_DIR = $(INSTALL) -m755 -d
INSTALL_DATA = $(INSTALL) -m644
INSTALL_PROGRAM = $(INSTALL) -m755
GIT_REVISION = $(strip $(shell git rev-parse HEAD 2> /dev/null ))
GIT_TAG = $(strip $(shell head="$(call GIT_REVISION)"; git tag --points-at $$head 2> /dev/null | tail -1) )
SOURCE_DATE_EPOCH_PATH = lib/elixir/tmp/ebin_reproducible
SOURCE_DATE_EPOCH_FILE = $(SOURCE_DATE_EPOCH_PATH)/SOURCE_DATE_EPOCH
.PHONY: install compile erlang elixir unicode app build_plt clean_plt dialyze test check_reproducible clean clean_residual_files install_man clean_man docs Docs.zip Precompiled.zip zips
.PHONY: install compile erlang elixir build_plt clean_plt dialyze test clean install_man clean_man docs Docs.zip Precompiled.zip publish_zips publish_docs publish_mix
.NOTPARALLEL: compile
#==> Functions
define CHECK_ERLANG_RELEASE
erl -noshell -eval '{V,_} = string:to_integer(erlang:system_info(otp_release)), io:fwrite("~s", [is_integer(V) and (V >= 20)])' -s erlang halt | grep -q '^true'; \
if [ $$? != 0 ]; then \
echo "At least Erlang/OTP 20.0 is required to build Elixir"; \
exit 1; \
fi
$(Q) erl -noshell -eval 'io:fwrite("~s", [erlang:system_info(otp_release) >= "18"])' -s erlang halt | grep -q '^true'; \
if [ $$? != 0 ]; then \
echo "At least Erlang 18.0 is required to build Elixir"; \
exit 1; \
fi;
endef
define APP_TEMPLATE
$(1): lib/$(1)/ebin/Elixir.$(2).beam lib/$(1)/ebin/$(1).app
lib/$(1)/ebin/$(1).app: lib/$(1)/mix.exs
$(Q) cd lib/$(1) && ../../bin/elixir -e 'Mix.start(:permanent, [])' -r mix.exs -e 'Mix.Task.run("compile.app", ~w[--compile-path ebin])'
$(Q) mkdir -p lib/$(1)/_build/shared/lib/$(1)
$(Q) cp -R lib/$(1)/ebin lib/$(1)/_build/shared/lib/$(1)/
$(Q) cd lib/$(1) && ../../bin/elixir -e 'Mix.start(:permanent, [])' -r mix.exs -e 'Mix.Task.run("compile.app")'
$(Q) cp lib/$(1)/_build/shared/lib/$(1)/ebin/$(1).app lib/$(1)/ebin/$(1).app
$(Q) rm -rf lib/$(1)/_build
lib/$(1)/ebin/Elixir.$(2).beam: $(wildcard lib/$(1)/lib/*.ex) $(wildcard lib/$(1)/lib/*/*.ex) $(wildcard lib/$(1)/lib/*/*/*.ex)
@ echo "==> $(1) (compile)"
@@ -44,67 +41,52 @@ lib/$(1)/ebin/Elixir.$(2).beam: $(wildcard lib/$(1)/lib/*.ex) $(wildcard lib/$(1
$(Q) cd lib/$(1) && ../../$$(ELIXIRC) "lib/**/*.ex" -o ebin
test_$(1): compile $(1)
@ echo "==> $(1) (ex_unit)"
@ echo "==> $(1) (exunit)"
$(Q) cd lib/$(1) && ../../bin/elixir -r "test/test_helper.exs" -pr "test/**/*_test.exs";
endef
define WRITE_SOURCE_DATE_EPOCH
$(shell mkdir -p $(SOURCE_DATE_EPOCH_PATH) && bin/elixir -e \
'IO.puts System.build_info()[:date] \
|> DateTime.from_iso8601() \
|> elem(1) \
|> DateTime.to_unix()' > $(SOURCE_DATE_EPOCH_FILE))
endef
define READ_SOURCE_DATE_EPOCH
$(strip $(shell cat $(SOURCE_DATE_EPOCH_FILE)))
endef
#==> Compilation tasks
APP := lib/elixir/ebin/elixir.app
PARSER := lib/elixir/src/elixir_parser.erl
KERNEL := lib/elixir/ebin/Elixir.Kernel.beam
UNICODE := lib/elixir/ebin/Elixir.String.Unicode.beam
KERNEL:=lib/elixir/ebin/Elixir.Kernel.beam
UNICODE:=lib/elixir/ebin/Elixir.String.Unicode.beam
default: compile
compile: erlang $(APP) elixir
compile: lib/elixir/src/elixir.app.src erlang elixir
erlang: $(PARSER)
$(Q) if [ ! -f $(APP) ]; then $(call CHECK_ERLANG_RELEASE); fi
$(Q) cd lib/elixir && mkdir -p ebin && erl -make
lib/elixir/src/elixir.app.src: src/elixir.app.src
$(Q) $(call CHECK_ERLANG_RELEASE)
$(Q) rm -rf lib/elixir/src/elixir.app.src
$(Q) echo "%% This file is automatically generated from <project_root>/src/elixir.app.src" \
>lib/elixir/src/elixir.app.src
$(Q) cat src/elixir.app.src >>lib/elixir/src/elixir.app.src
$(PARSER): lib/elixir/src/elixir_parser.yrl
$(Q) erlc -o $@ +'{verbose,true}' +'{report,true}' $<
erlang:
$(Q) cd lib/elixir && $(REBAR) compile
# Since Mix depends on EEx and EEx depends on Mix,
# we first compile EEx without the .app file,
# then Mix and then compile EEx fully
# Since Mix depends on EEx and EEx depends on
# Mix, we first compile EEx without the .app
# file, then mix and then compile EEx fully
elixir: stdlib lib/eex/ebin/Elixir.EEx.beam mix ex_unit logger eex iex
stdlib: $(KERNEL) VERSION
$(KERNEL): lib/elixir/lib/*.ex lib/elixir/lib/*/*.ex lib/elixir/lib/*/*/*.ex
$(Q) if [ ! -f $(KERNEL) ]; then \
echo "==> bootstrap (compile)"; \
$(ERL) -s elixir_compiler bootstrap -s erlang halt; \
$(Q) if [ ! -f $(KERNEL) ]; then \
echo "==> bootstrap (compile)"; \
$(ERL) -s elixir_compiler core -s erlang halt; \
fi
@ echo "==> elixir (compile)";
$(Q) cd lib/elixir && ../../$(ELIXIRC) "lib/kernel.ex" -o ebin;
$(Q) cd lib/elixir && ../../$(ELIXIRC) "lib/**/*.ex" -o ebin;
$(Q) $(MAKE) unicode
$(Q) $(MAKE) app
app: $(APP)
$(APP): lib/elixir/src/elixir.app.src lib/elixir/ebin VERSION $(GENERATE_APP)
$(Q) $(GENERATE_APP) $< $@ $(VERSION)
$(Q) rm -rf lib/elixir/ebin/elixir.app
$(Q) cd lib/elixir && $(REBAR) compile
unicode: $(UNICODE)
$(UNICODE): lib/elixir/unicode/*
@ echo "==> unicode (compile)";
$(Q) $(ELIXIRC) lib/elixir/unicode/unicode.ex -o lib/elixir/ebin;
$(Q) $(ELIXIRC) lib/elixir/unicode/properties.ex -o lib/elixir/ebin;
$(Q) $(ELIXIRC) lib/elixir/unicode/tokenizer.ex -o lib/elixir/ebin;
@ echo "Embedding the Unicode database... (this may take a while)"
$(Q) cd lib/elixir && ../../$(ELIXIRC) unicode/unicode.ex -o ebin;
$(eval $(call APP_TEMPLATE,ex_unit,ExUnit))
$(eval $(call APP_TEMPLATE,logger,Logger))
@@ -115,74 +97,45 @@ $(eval $(call APP_TEMPLATE,iex,IEx))
install: compile
@ echo "==> elixir (install)"
$(Q) for dir in lib/*; do \
rm -rf $(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/$$dir/ebin; \
rm -Rf $(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/$$dir/ebin; \
$(INSTALL_DIR) "$(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/$$dir/ebin"; \
$(INSTALL_DATA) $$dir/ebin/* "$(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/$$dir/ebin"; \
done
$(Q) $(INSTALL_DIR) "$(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/bin"
$(Q) $(INSTALL_PROGRAM) $(filter-out %.ps1, $(filter-out %.bat, $(wildcard bin/*))) "$(DESTDIR)$(PREFIX)/$(LIBDIR)/elixir/bin"
$(Q) $(INSTALL_DIR) "$(DESTDIR)$(PREFIX)/$(BINDIR)"
$(Q) for file in "$(DESTDIR)$(PREFIX)"/$(LIBDIR)/elixir/bin/*; do \
ln -sf "../$(LIBDIR)/elixir/bin/$${file##*/}" "$(DESTDIR)$(PREFIX)/$(BINDIR)/"; \
$(Q) $(INSTALL_DIR) "$(DESTDIR)$(PREFIX)/bin"
$(Q) for file in "$(DESTDIR)$(PREFIX)"/$(LIBDIR)/elixir/bin/* ; do \
ln -sf "../$(LIBDIR)/elixir/bin/$${file##*/}" "$(DESTDIR)$(PREFIX)/bin/" ; \
done
$(MAKE) install_man
check_reproducible: compile
$(Q) echo "==> Checking for reproducible builds..."
$(Q) rm -rf lib/*/tmp/ebin_reproducible/
$(call WRITE_SOURCE_DATE_EPOCH)
$(Q) mkdir -p lib/elixir/tmp/ebin_reproducible/ \
lib/eex/tmp/ebin_reproducible/ \
lib/iex/tmp/ebin_reproducible/ \
lib/logger/tmp/ebin_reproducible/ \
lib/mix/tmp/ebin_reproducible/
$(Q) mv lib/elixir/ebin/* lib/elixir/tmp/ebin_reproducible/
$(Q) mv lib/eex/ebin/* lib/eex/tmp/ebin_reproducible/
$(Q) mv lib/iex/ebin/* lib/iex/tmp/ebin_reproducible/
$(Q) mv lib/logger/ebin/* lib/logger/tmp/ebin_reproducible/
$(Q) mv lib/mix/ebin/* lib/mix/tmp/ebin_reproducible/
SOURCE_DATE_EPOCH=$(call READ_SOURCE_DATE_EPOCH) $(MAKE) compile
$(Q) echo "Diffing..."
$(Q) diff -r lib/elixir/ebin/ lib/elixir/tmp/ebin_reproducible/
$(Q) diff -r lib/eex/ebin/ lib/eex/tmp/ebin_reproducible/
$(Q) diff -r lib/iex/ebin/ lib/iex/tmp/ebin_reproducible/
$(Q) diff -r lib/logger/ebin/ lib/logger/tmp/ebin_reproducible/
$(Q) diff -r lib/mix/ebin/ lib/mix/tmp/ebin_reproducible/
$(Q) echo "Builds are reproducible"
clean:
cd lib/elixir && $(REBAR) clean
rm -rf ebin
rm -rf lib/*/ebin
rm -rf $(PARSER)
$(Q) $(MAKE) clean_residual_files
rm -rf lib/elixir/test/ebin
rm -rf lib/*/tmp
rm -rf lib/mix/test/fixtures/git_repo
rm -rf lib/mix/test/fixtures/deps_on_git_repo
rm -rf lib/mix/test/fixtures/git_rebar
rm -rf lib/elixir/src/elixir.app.src
$(MAKE) clean_man
clean_elixir:
clean_exbeam:
$(Q) rm -f lib/*/ebin/Elixir.*.beam
clean_residual_files:
rm -rf lib/*/_build/
rm -rf lib/*/tmp/
rm -rf lib/elixir/test/ebin/
rm -rf lib/mix/test/fixtures/deps_on_git_repo/
rm -rf lib/mix/test/fixtures/git_rebar/
rm -rf lib/mix/test/fixtures/git_repo/
rm -rf lib/mix/test/fixtures/git_sparse_repo/
rm -f erl_crash.dump
$(Q) $(MAKE) clean_man
#==> Documentation tasks
#==> Create Documentation
LOGO_PATH = $(shell test -f ../docs/logo.png && echo "--logo ../docs/logo.png")
SOURCE_REF = $(shell tag="$(call GIT_TAG)" revision="$(call GIT_REVISION)"; echo "$${tag:-$$revision}\c")
DOCS_FORMAT = html
COMPILE_DOCS = bin/elixir ../ex_doc/bin/ex_doc "$(1)" "$(VERSION)" "lib/$(2)/ebin" -m "$(3)" -u "https://github.com/elixir-lang/elixir" --source-ref "$(call SOURCE_REF)" $(call LOGO_PATH) -o doc/$(2) -n https://hexdocs.pm/$(2)/$(CANONICAL) -p https://elixir-lang.org/docs.html -f "$(DOCS_FORMAT)" $(4)
SOURCE_REF = $(shell head="$$(git rev-parse HEAD)" tag="$$(git tag --points-at $$head | tail -1)" ; echo "$${tag:-$$head}\c")
COMPILE_DOCS = bin/elixir ../ex_doc/bin/ex_doc "$(1)" "$(VERSION)" "lib/$(2)/ebin" -m "$(3)" -u "https://github.com/elixir-lang/elixir" --source-ref "$(call SOURCE_REF)" $(call LOGO_PATH) -o doc/$(2) -p http://elixir-lang.org/docs.html $(4)
docs: compile ../ex_doc/bin/ex_doc docs_elixir docs_eex docs_mix docs_iex docs_ex_unit docs_logger
docs_elixir: compile ../ex_doc/bin/ex_doc
@ echo "==> ex_doc (elixir)"
$(Q) rm -rf doc/elixir
$(call COMPILE_DOCS,Elixir,elixir,Kernel,-c lib/elixir/docs.exs)
$(call COMPILE_DOCS,Elixir,elixir,Kernel,-e "lib/elixir/pages/Typespecs.md" -e "lib/elixir/pages/Writing Documentation.md")
docs_eex: compile ../ex_doc/bin/ex_doc
@ echo "==> ex_doc (eex)"
@@ -213,45 +166,34 @@ docs_logger: compile ../ex_doc/bin/ex_doc
@ echo "ex_doc is not found in ../ex_doc as expected. See README for more information."
@ false
#==> Zip tasks
#==> Zips
Docs.zip: docs
rm -f Docs-v$(VERSION).zip
rm -rf Docs-v$(VERSION).zip
zip -9 -r Docs-v$(VERSION).zip CHANGELOG.md doc NOTICE LICENSE README.md
@ echo "Docs file created $(CURDIR)/Docs-v$(VERSION).zip"
Precompiled.zip: build_man compile
rm -f Precompiled-v$(VERSION).zip
zip -9 -r Precompiled-v$(VERSION).zip bin CHANGELOG.md lib/*/ebin lib/*/lib LICENSE man NOTICE README.md VERSION
rm -rf Precompiled-v$(VERSION).zip
zip -9 -r Precompiled-v$(VERSION).zip bin CHANGELOG.md lib/*/ebin LICENSE man NOTICE README.md VERSION
@ echo "Precompiled file created $(CURDIR)/Precompiled-v$(VERSION).zip"
zips: Precompiled.zip Docs.zip
@ echo ""
@ echo "### Checksums"
@ echo ""
@ shasum -a 1 < Precompiled-v$(VERSION).zip | sed -e "s/-//" | xargs echo " * Precompiled.zip SHA1:"
@ shasum -a 512 < Precompiled-v$(VERSION).zip | sed -e "s/-//" | xargs echo " * Precompiled.zip SHA512:"
@ shasum -a 1 < Docs-v$(VERSION).zip | sed -e "s/-//" | xargs echo " * Docs.zip SHA1:"
@ shasum -a 512 < Docs-v$(VERSION).zip | sed -e "s/-//" | xargs echo " * Docs.zip SHA512:"
@ echo ""
#==> Publish
#==> Test tasks
publish_zips: Precompiled.zip Docs.zip
test: test_formatted test_erlang test_elixir
publish_docs: docs
rm -rf ../docs/$(DOCS)/*/
cp -R doc/* ../docs/$(DOCS)
test_windows: test test_taskkill
#==> Tests tasks
test_taskkill:
taskkill //IM erl.exe //F //T //FI "MEMUSAGE gt 0"
taskkill //IM epmd.exe //F //T //FI "MEMUSAGE gt 0"
test: test_erlang test_elixir
TEST_ERL = lib/elixir/test/erlang
TEST_EBIN = lib/elixir/test/ebin
TEST_ERLS = $(addprefix $(TEST_EBIN)/, $(addsuffix .beam, $(basename $(notdir $(wildcard $(TEST_ERL)/*.erl)))))
test_formatted: compile
bin/elixir bin/mix format --check-formatted
test_erlang: compile $(TEST_ERLS)
@ echo "==> elixir (eunit)"
$(Q) $(ERL) -pa $(TEST_EBIN) -s test_helper test;
@@ -264,7 +206,7 @@ $(TEST_EBIN)/%.beam: $(TEST_ERL)/%.erl
test_elixir: test_stdlib test_ex_unit test_logger test_mix test_eex test_iex
test_stdlib: compile
@ echo "==> elixir (ex_unit)"
@ echo "==> elixir (exunit)"
$(Q) exec epmd & exit
$(Q) if [ "$(OS)" = "Windows_NT" ]; then \
cd lib/elixir && cmd //C call ../../bin/elixir.bat -r "test/elixir/test_helper.exs" -pr "test/elixir/**/*_test.exs"; \
@@ -288,7 +230,7 @@ build_plt: clean_plt $(PLT)
dialyze: compile $(PLT)
@ echo "==> Dialyzing Elixir..."
$(Q) dialyzer -pa lib/elixir/ebin --plt $(PLT) $(DIALYZER_OPTS) lib/*/ebin
$(Q) dialyzer --plt $(PLT) $(DIALYZER_OPTS) lib/*/ebin
#==> Man page tasks
@@ -296,26 +238,24 @@ build_man: man/iex.1 man/elixir.1
man/iex.1:
$(Q) cp man/iex.1.in man/iex.1
$(Q) sed -i.bak "/{COMMON}/r man/common" man/iex.1
$(Q) sed -i.bak "/{COMMON}/r common" man/iex.1
$(Q) sed -i.bak "/{COMMON}/d" man/iex.1
$(Q) rm -f man/iex.1.bak
$(Q) rm man/iex.1.bak
man/elixir.1:
$(Q) cp man/elixir.1.in man/elixir.1
$(Q) sed -i.bak "/{COMMON}/r man/common" man/elixir.1
$(Q) sed -i.bak "/{COMMON}/r common" man/elixir.1
$(Q) sed -i.bak "/{COMMON}/d" man/elixir.1
$(Q) rm -f man/elixir.1.bak
$(Q) rm man/elixir.1.bak
clean_man:
rm -f man/elixir.1
rm -f man/elixir.1.bak
rm -f man/iex.1
rm -f man/iex.1.bak
install_man: build_man
$(Q) mkdir -p $(DESTDIR)$(MAN_PREFIX)/man1
$(Q) $(INSTALL_DATA) man/elixir.1 $(DESTDIR)$(MAN_PREFIX)/man1
$(Q) $(INSTALL_DATA) man/elixirc.1 $(DESTDIR)$(MAN_PREFIX)/man1
$(Q) $(INSTALL_DATA) man/iex.1 $(DESTDIR)$(MAN_PREFIX)/man1
$(Q) $(INSTALL_DATA) man/mix.1 $(DESTDIR)$(MAN_PREFIX)/man1
$(Q) mkdir -p $(DESTDIR)$(PREFIX)/share/man/man1
$(Q) $(INSTALL_DATA) man/elixir.1 $(DESTDIR)$(PREFIX)/share/man/man1
$(Q) $(INSTALL_DATA) man/elixirc.1 $(DESTDIR)$(PREFIX)/share/man/man1
$(Q) $(INSTALL_DATA) man/iex.1 $(DESTDIR)$(PREFIX)/share/man/man1
$(Q) $(INSTALL_DATA) man/mix.1 $(DESTDIR)$(PREFIX)/share/man/man1
$(MAKE) clean_man
+4 -18
View File
@@ -1,7 +1,9 @@
LEGAL NOTICE INFORMATION
------------------------
All the files in this distribution are copyright to the terms below.
All the files in this distribution are copyright (c) 2012 Plataformatec
covered under Elixir's license (see the file LICENSE) except the cases
below.
== lib/elixir/src/elixir_parser.erl (generated by build scripts)
@@ -11,23 +13,7 @@ Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
https://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
== All other files
Copyright 2012 Plataformatec
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
https://www.apache.org/licenses/LICENSE-2.0
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
+42 -167
View File
@@ -1,37 +1,15 @@
![Elixir](https://github.com/elixir-lang/elixir-lang.github.com/raw/master/images/logo/logo.png)
=========
[![Travis build](https://secure.travis-ci.org/elixir-lang/elixir.svg?branch=master
[![Build Status](https://secure.travis-ci.org/elixir-lang/elixir.svg?branch=master
"Build Status")](https://travis-ci.org/elixir-lang/elixir)
[![Windows build](https://ci.appveyor.com/api/projects/status/macwuxq7aiiv61g1?svg=true)](https://ci.appveyor.com/project/josevalim/elixir)
Elixir is a dynamic, functional language designed for building scalable
and maintainable applications.
For more about Elixir, installation and documentation,
[check Elixir's website](https://elixir-lang.org/).
[check Elixir's website](http://elixir-lang.org/).
## Policies
## Usage
New releases are announced in the [announcement mailing list][8].
You can subscribe by sending an email to elixir-lang-ann+subscribe@googlegroups.com and replying to the confirmation email.
All security releases [will be tagged with `[security]`][10]. For more information, please read our [Security Policy][9].
All interactions in our official communication channels follow our [Code of Conduct][1].
## Bug reports
For reporting bugs, [visit our issue tracker][2] and follow the steps
for reporting a new issue. **Please disclose security vulnerabilities
privately at elixir-security@googlegroups.com**.
## Compiling from source
For the many different ways to install Elixir,
[see our installation instructions on the website](https://elixir-lang.org/install.html).
To compile from source, you can follow the steps below.
First, [install Erlang](https://elixir-lang.org/install.html#installing-erlang). Then clone this repository to your machine, compile and test it:
If you want to contribute to Elixir or run it from source, clone this
repository to your machine, compile and test it:
```sh
git clone https://github.com/elixir-lang/elixir.git
@@ -47,168 +25,65 @@ If Elixir fails to build (specifically when pulling in a new version via
`git`), be sure to remove any previous build artifacts by running
`make clean`, then `make test`.
If tests pass, you can use Interactive Elixir by running `bin/iex` in your terminal.
If tests pass, you are ready to move on to the
[Getting Started guide][1] or to try Interactive Elixir by running:
`bin/iex` in your terminal.
However, if tests fail, it is likely that you have an outdated Erlang/OTP version
(Elixir requires Erlang/OTP 20.0 or later). You can check your Erlang/OTP version
by calling `erl` in the command line. You will see some information as follows:
However, if tests fail, it is likely you have an outdated Erlang version
(Elixir requires Erlang 18.0 or later).
You can check your Erlang version by calling `erl` in the command line.
You will see some information as follows:
Erlang/OTP 20 [erts-9.0] [smp:2:2] [async-threads:10] [kernel-poll:false]
`Erlang/OTP 18 [erts-7.0] [source] [smp:2:2] [async-threads:10] [hipe]
[kernel-poll:false]`
If you have properly set up your dependencies and tests still fail,
you may want to open up a bug report, as explained next.
## Proposing new features
For proposing new features, please start a discussion in the
[Elixir Core mailing list][3]. Keep in mind that it is your responsibility
to argue and explain why a feature is useful and how it will impact the
codebase and the community.
Once a proposal is accepted, it will be added to [the issue tracker][2].
The issue tracker focuses on *actionable items* and it holds a list of
upcoming enhancements and pending bugs. All entries in the tracker are
tagged for clarity and to ease collaboration.
Features and bug fixes that have already been merged and will be included
in the next release are marked as "closed" in the issue tracker and are
added to the [changelog][7].
## Contributing
We welcome everyone to contribute to Elixir. To do so, there are a few
things you need to know about the code. First, Elixir code is divided
in applications inside the `lib` folder:
* `elixir` - Elixir's kernel and standard library
* `eex` - EEx is the template engine that allows you to embed Elixir
* `ex_unit` - ExUnit is a simple test framework that ships with Elixir
* `iex` - IEx stands for Interactive Elixir: Elixir's interactive shell
* `logger` - Logger is the built-in logger
* `mix` - Mix is Elixir's build tool
You can run all tests in the root directory with `make test` and you can
also run tests for a specific framework `make test_#{APPLICATION}`, for example,
`make test_ex_unit`. If you just changed something in the Elixir's standard
library, you can run only that portion through `make test_stdlib`.
If you are changing just one file, you can choose to compile and run tests only
for that particular file for fast development cycles. For example, if you
are changing the String module, you can compile it and run its tests as:
```sh
bin/elixirc lib/elixir/lib/string.ex -o lib/elixir/ebin
bin/elixir lib/elixir/test/elixir/string_test.exs
```
To recompile (including Erlang modules):
```sh
make compile
```
After your changes are done, please remember to run `mix format` to guarantee
all files are properly formatted and then run the full suite with
`make test`.
If your contribution fails during the bootstrapping of the language,
you can rebuild the language from scratch with:
```sh
make clean_elixir compile
```
Similarly, if you can't get Elixir to compile or the tests to pass after
updating an existing checkout, run `make clean compile`. You can check
[the official build status on Travis-CI](https://travis-ci.org/elixir-lang/elixir).
More tasks can be found by reading the [Makefile](Makefile).
With tests running and passing, you are ready to contribute to Elixir and
[send a pull request](https://help.github.com/articles/using-pull-requests/).
We have saved some excellent pull requests we have received in the past in
case you are looking for some examples:
* [Implement Enum.member? - Pull Request](https://github.com/elixir-lang/elixir/pull/992)
* [Add String.valid? - Pull Request](https://github.com/elixir-lang/elixir/pull/1058)
* [Implement capture_io for ExUnit - Pull Request](https://github.com/elixir-lang/elixir/pull/1059)
### Reviewing changes
Once a pull request is sent, the Elixir team will review your changes.
We outline our process below to clarify the roles of everyone involved.
All pull requests must be approved by two committers before being merged into
the repository. If any changes are necessary, the team will leave appropriate
comments requesting changes to the code. Unfortunately we cannot guarantee a
pull request will be merged, even when modifications are requested, as the Elixir
team will re-evaluate the contribution as it changes.
Committers may also push style changes directly to your branch. If you would
rather manage all changes yourself, you can disable "Allow edits from maintainers"
feature when submitting your pull request.
The Elixir team may optionally assign someone to review a pull request.
If someone is assigned, they must explicitly approve the code before
another team member can merge it.
When the review finishes, your pull request will be squashed and merged
into the repository. If you have carefully organized your commits and
believe they should be merged without squashing, please mention it in
a comment.
If you have the correct version and tests still fail, feel free to
[open an issue][2].
## Building documentation
Building the documentation requires [ExDoc](https://github.com/elixir-lang/ex_doc)
to be installed and built alongside Elixir:
Building the documentation requires
[ExDoc](https://github.com/elixir-lang/ex_doc) to be installed and built
alongside Elixir.
```sh
# After cloning and compiling Elixir, in its parent directory:
git clone git://github.com/elixir-lang/ex_doc.git
cd ex_doc && ../elixir/bin/mix do deps.get, compile
cd ../elixir && make docs
```
Now go back to Elixir's root directory and run:
This will produce documentation sets for `elixir`, `mix`, etc., under the `doc` directory.
```sh
make docs # to generate HTML pages
make docs DOCS_FORMAT=epub # to generate EPUB documents
```
## Contributing
This will produce documentation sets for `elixir`, `mix`, etc. under
the `doc` directory. If you are planning to contribute documentation,
[please check our best practices for writing documentation](https://hexdocs.pm/elixir/writing-documentation.html).
We appreciate any contribution to Elixir.
Check our [CODE_OF_CONDUCT.md](CODE_OF_CONDUCT.md) and
[CONTRIBUTING.md](CONTRIBUTING.md) guides for more information.
We usually keep a list of features and bugs [in the issue tracker][2].
## Development links
## Important links
* [Elixir Documentation][6]
* [Elixir Core Mailing list (development)][3]
* [Announcement mailing list][8]
* [Code of Conduct][1]
* [Issue tracker][2]
* [Changelog][7]
* [Security Policy][9]
* **[#elixir-lang][4]** on [Freenode][5] IRC
* [Elixir Website][1]
* [Elixir Documentation][7]
* **[#elixir-lang][5]** on [Freenode][6] IRC
* [Issue tracker][2]
* [elixir-talk Mailing list (questions)][3]
* [elixir-core Mailing list (development)][4]
[1]: CODE_OF_CONDUCT.md
[1]: http://elixir-lang.org
[2]: https://github.com/elixir-lang/elixir/issues
[3]: https://groups.google.com/group/elixir-lang-core
[4]: https://webchat.freenode.net/?channels=#elixir-lang
[5]: https://www.freenode.net
[6]: https://elixir-lang.org/docs.html
[7]: CHANGELOG.md
[8]: https://groups.google.com/group/elixir-lang-ann
[9]: SECURITY.md
[10]: https://groups.google.com/forum/#!searchin/elixir-lang-ann/%5Bsecurity%5D%7Csort:date
[3]: https://groups.google.com/group/elixir-lang-talk
[4]: https://groups.google.com/group/elixir-lang-core
[5]: https://webchat.freenode.net/?channels=#elixir-lang
[6]: http://www.freenode.net
[7]: http://elixir-lang.org/docs.html
## License
"Elixir" and the Elixir logo are copyright (c) 2012 Plataformatec.
Elixir source code is released under Apache License 2.0.
Elixir source code is released under Apache 2 License.
Check [NOTICE](NOTICE) and [LICENSE](LICENSE) files for more information.
Check [NOTICE](NOTICE) and [LICENSE](LICENSE) files for more
information.
+21 -25
View File
@@ -1,45 +1,41 @@
# Release process
## Shipping a new version
## All releases
This document simply outlines the release process:
1. Ensure you are running on the oldest supported Erlang version
2. Update version in /VERSION
2. Remove all `-dev` extension from versions (see below for all files)
3. Ensure /CHANGELOG.md is updated, versioned and add the current date
3. Ensure CHANGELOG is updated and add current date
4. Update "Compatibility and Deprecations" if a new OTP version is supported
4. Commit changes above with title "Release vVERSION" and generate new tag
5. Commit changes above with title "Release vVERSION" and generate a new tag
5. Run `make clean test` to ensure all tests pass from scratch and the CI is green
6. Run `make clean test` to ensure all tests pass from scratch and the CI is green
6. Recompile an existing project (for example, Ecto) to ensure manifests can be upgraded
7. Recompile an existing project (for example, Ecto) to ensure manifests can be upgraded
7. Push branch and the new tag
8. Push branch and the new tag
8. Publish new docs with `make publish_docs`, copy docs to `docs/stable` if appropriate, and push to GitHub Pages
9. Publish new zips with `make zips`, upload `Precompiled.zip` and `Docs.zip` to GitHub Releases, and include SHAs+CHANGELOG
9. Publish new zips with `make publish_zips`, upload `Precompiled.zip` and `Docs.zip` to GitHub Releases
10. Add the release to `elixir.csv` (all releases) and `_data/elixir-versions.yml` (except for RCs) files in `elixir-lang/elixir-lang.github.com`
10. Add the release to `elixir.csv` file in `elixir-lang/elixir-lang.github.com`
11. Send an e-mail to elixir-lang-ann@googlegroups.com with title "Elixir vVERSION released". The body should be a link to the Release page on GitHub and the checksums. If it is a security release, prefix the title with the `[security]` tag
11. Build and push standalone Mix with `make publish_mix` (requires AWS credentials)
## Creating a new vMAJOR.MINOR branch
## New vMAJOR.MINOR releases
### In the new branch
12. Create a new branch "vMAJOR.MINOR"
1. Set `CANONICAL=` in /Makefile
13. Move docs generation to `docs/vMAJOR.MINOR` in Makefile and copy them from `docs/stable` (change index.html accordingly)
2. Update tables in /SECURITY.md and "Compatibility and Deprecations"
14. In master, bump versions, start new CHANGELOG, add `-dev` back and commit "Start vVERSION+1"
3. Commit "Prepare vMAJOR.MINOR for release"
## Places where version is mentioned
### Back in master
1. Bump /VERSION file
2. Start new /CHANGELOG.md
3. Update tables in "Compatibility and Deprecations"
4. Commit "Start vMAJOR.MINOR+1"
* VERSION (make sure there is no newline in this file)
* CHANGELOG.md
* src/elixir.app.src (not lib/elixir/src/elixir.app.src)
-23
View File
@@ -1,23 +0,0 @@
# Security Policy
## Supported versions
Elixir applies bug fixes only to the latest minor branch. Security patches are available for the last 5 minor branches:
| Elixir version | Support
| -------------- | ------------------------------
| 1.9 | Bug fixes and security patches
| 1.8 | Security patches only
| 1.7 | Security patches only
| 1.6 | Security patches only
| 1.5 | Security patches only
## Announcements
New releases are announced in the read-only [announcements mailing list](https://groups.google.com/group/elixir-lang-ann). You can subscribe by sending an email to elixir-lang-ann+subscribe@googlegroups.com and replying to the confirmation email.
All security releases [will be tagged with `[security]`](https://groups.google.com/forum/#!searchin/elixir-lang-ann/%5Bsecurity%5D%7Csort:date).
## Reporting a vulnerability
Please disclose security vulnerabilities privately at elixir-security@googlegroups.com
+1 -1
View File
@@ -1 +1 @@
1.9.4
1.2.2
+54 -174
View File
@@ -1,56 +1,27 @@
#!/bin/sh
set -e
if [ $# -eq 0 ] || [ "$1" = "--help" ] || [ "$1" = "-h" ]; then
echo "Usage: $(basename "$0") [options] [.exs file] [data]
echo "Usage: `basename $0` [options] [.exs file] [data]
## General options
-v Prints version and exits
-e \"command\" Evaluates the given command (*)
-r \"file\" Requires the given files/patterns (*)
-S \"script\"   Finds and executes the given script
-pr \"file\" Requires the given files/patterns in parallel (*)
-pa \"path\" Prepends the given path to Erlang code path (*)
-pz \"path\" Appends the given path to Erlang code path (*)
--app \"app\" Start the given app and its dependencies (*)
--erl \"switches\" Switches to be passed down to Erlang (*)
--name \"name\" Makes and assigns a name to the distributed node
--sname \"name\" Makes and assigns a short name to the distributed node
--cookie \"cookie\" Sets a cookie for this distributed node
--hidden Makes a hidden node
--detached Starts the Erlang VM detached from console
--werl Uses Erlang's Windows shell GUI (Windows only)
--no-halt Does not halt the Erlang VM after execution
-e \"COMMAND\" Evaluates the given command (*)
-h, --help Prints this message and exits
-r \"FILE\" Requires the given files/patterns (*)
-S SCRIPT   Finds and executes the given script in \$PATH
-pr \"FILE\" Requires the given files/patterns in parallel (*)
-pa \"PATH\" Prepends the given path to Erlang code path (*)
-pz \"PATH\" Appends the given path to Erlang code path (*)
-v, --version Prints Elixir version and exits
--app APP Starts the given app and its dependencies (*)
--erl \"SWITCHES\" Switches to be passed down to Erlang (*)
--eval \"COMMAND\" Evaluates the given command, same as -e (*)
--logger-otp-reports BOOL Enables or disables OTP reporting
--logger-sasl-reports BOOL Enables or disables SASL reporting
--no-halt Does not halt the Erlang VM after execution
--werl Uses Erlang's Windows shell GUI (Windows only)
Options given after the .exs file or -- are passed down to the executed code.
Options can be passed to the Erlang runtime using \$ELIXIR_ERL_OPTIONS or --erl.
## Distribution options
The following options are related to node distribution.
--cookie COOKIE Sets a cookie for this distributed node
--hidden Makes a hidden node
--name NAME Makes and assigns a name to the distributed node
--rpc-eval NODE \"COMMAND\" Evaluates the given command on the given remote node (*)
--sname NAME Makes and assigns a short name to the distributed node
## Release options
The following options are generally used under releases.
--boot \"FILE\" Uses the given FILE.boot to start the system
--boot-var VAR \"VALUE\" Makes \$VAR available as VALUE to FILE.boot (*)
--erl-config \"FILE\" Loads configuration in FILE.config written in Erlang (*)
--pipe-to \"PIPEDIR\" \"LOGDIR\" Starts the Erlang VM as a named PIPEDIR and LOGDIR
--vm-args \"FILE\" Passes the contents in file as arguments to the VM
--pipe-to starts Elixir detached from console (Unix-like only).
It will attempt to create PIPEDIR and LOGDIR if they don't exist.
See run_erl to learn more. To reattach, run: to_erl PIPEDIR.
** Options marked with (*) can be given more than once." >&2
** Options marked with (*) can be given more than once
** Options given after the .exs file or -- are passed down to the executed code
** Options can be passed to the Erlang runtime using ELIXIR_ERL_OPTIONS or --erl" >&2
exit 1
fi
@@ -60,142 +31,56 @@ readlink_f () {
if [ -h "$filename" ]; then
readlink_f "$(readlink "$filename")"
else
echo "$(pwd -P)/$filename"
echo "`pwd -P`/$filename"
fi
}
# Stores static erlang arguments and --erl (which is passed as is)
ERL=""
# Stores erl arguments preserving spaces/quotes (mimics an array)
erl () {
eval "E${E}=\$1"
E=$((E + 1))
}
# Checks if a string starts with prefix. Usage: starts_with "$STRING" "$PREFIX"
starts_with () {
case $1 in
"$2"*) true;;
*) false;;
esac
}
ERL_EXEC="erl"
MODE="elixir"
ERL_EXEC="erl"
ERL=""
I=1
E=0
LENGTH=$#
set -- "$@" -extra
while [ $I -le $LENGTH ]; do
while [ $I -le $# ]; do
S=1
case "$1" in
eval "PEEK=\${$I}"
case "$PEEK" in
+iex)
set -- "$@" "$1"
MODE="iex"
;;
+elixirc)
set -- "$@" "$1"
MODE="elixirc"
;;
-v|--no-halt)
set -- "$@" "$1"
-v|--compile|--no-halt)
;;
-e|-r|-pr|-pa|-pz|--app|--eval|--remsh|--dot-iex)
-e|-r|-pr|-pa|-pz|--remsh|--app)
S=2
set -- "$@" "$1" "$2"
;;
--rpc-eval)
S=3
set -- "$@" "$1" "$2" "$3"
;;
--detached)
echo "warning: the --detached option is deprecated" >&2
ERL="$ERL -detached"
;;
--hidden)
ERL="$ERL -hidden"
;;
--logger-otp-reports)
S=2
if [ "$2" = 'true' ] || [ "$2" = 'false' ]; then
ERL="$ERL -logger handle_otp_reports $2"
fi
;;
--logger-sasl-reports)
S=2
if [ "$2" = 'true' ] || [ "$2" = 'false' ]; then
ERL="$ERL -logger handle_sasl_reports $2"
fi
;;
--erl)
S=2
ERL="$ERL $2"
--detached|--hidden)
ERL="$ERL `echo $PEEK | cut -c 2-`"
;;
--cookie)
S=2
erl "-setcookie"
erl "$2"
I=$(expr $I + 1)
eval "VAL=\${$I}"
ERL="$ERL -setcookie "$VAL""
;;
--sname|--name)
S=2
erl "$(echo "$1" | cut -c 2-)"
erl "$2"
I=$(expr $I + 1)
eval "VAL=\${$I}"
ERL="$ERL `echo $PEEK | cut -c 2-` "$VAL""
;;
--erl-config)
S=2
erl "-config"
erl "$2"
;;
--vm-args)
S=2
erl "-args_file"
erl "$2"
;;
--boot)
S=2
erl "-boot"
erl "$2"
;;
--boot-var)
S=3
erl "-boot_var"
erl "$2"
erl "$3"
;;
--pipe-to)
S=3
RUN_ERL_PIPE="$2"
RUN_ERL_LOG="$3"
if [ "$(starts_with "$RUN_ERL_PIPE" "-")" ]; then
echo "--pipe-to : PIPEDIR cannot be a switch" >&2 && exit 1
elif [ "$(starts_with "$RUN_ERL_LOG" "-")" ]; then
echo "--pipe-to : LOGDIR cannot be a switch" >&2 && exit 1
fi
--erl)
I=$(expr $I + 1)
eval "VAL=\${$I}"
ERL="$ERL "$VAL""
;;
--werl)
if [ "$OS" = "Windows_NT" ]; then ERL_EXEC="werl"; fi
USE_WERL=true
;;
*)
while [ $I -le $LENGTH ]; do
I=$((I + 1))
set -- "$@" "$1"
shift
done
break
;;
esac
I=$((I + S))
shift $S
done
I=$((E - 1))
while [ $I -ge 0 ]; do
eval "VAL=\$E$I"
set -- "$VAL" "$@"
I=$((I - 1))
I=$(expr $I + $S)
done
SELF=$(readlink_f "$0")
@@ -204,26 +89,21 @@ SCRIPT_PATH=$(dirname "$SELF")
if [ "$OSTYPE" = "cygwin" ]; then SCRIPT_PATH=$(cygpath -m "$SCRIPT_PATH"); fi
if [ "$MODE" != "iex" ]; then ERL="-noshell -s elixir start_cli $ERL"; fi
# Check for terminal support
if [ "$OS" != "Windows_NT" ]; then
if test -t 1 -a -t 2; then ERL="-elixir ansi_enabled true $ERL"; fi
fi
ERTS_BIN=
set -- "$ERTS_BIN$ERL_EXEC" -pa "$SCRIPT_PATH"/../lib/*/ebin $ELIXIR_ERL_OPTIONS $ERL "$@"
if [ -n "$RUN_ERL_PIPE" ]; then
ESCAPED=""
for PART in "$@"; do
ESCAPED="$ESCAPED $(echo "$PART" | sed 's/[^a-zA-Z0-9_\-\/]/\\&/g')"
done
mkdir -p "$RUN_ERL_PIPE"
mkdir -p "$RUN_ERL_LOG"
ERL_EXEC="run_erl"
set -- "$ERTS_BIN$ERL_EXEC" -daemon "$RUN_ERL_PIPE/" "$RUN_ERL_LOG/" "$ESCAPED"
if [ "$OS" = "Windows_NT" ] && [ $USE_WERL ]; then
ERL_EXEC="werl"
fi
if [ -n "$ELIXIR_CLI_DRY_RUN" ]; then
echo "$@"
else
exec "$@"
fi
if [ -z "$ERL_PATH" ]; then
if [ -f "$SCRIPT_PATH/../releases/RELEASES" ] && [ -f "$SCRIPT_PATH/erl" ]; then
ERL_PATH="$SCRIPT_PATH"/"$ERL_EXEC"
else
ERL_PATH="$ERL_EXEC"
fi
fi
exec "$ERL_PATH" -pa "$SCRIPT_PATH"/../lib/*/ebin $ELIXIR_ERL_OPTIONS $ERL -extra "$@"
+71 -129
View File
@@ -1,164 +1,106 @@
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
setlocal enabledelayedexpansion
if ""%1""=="""" goto documentation
if /I ""%1""==""--help"" goto documentation
if /I ""%1""==""-h"" goto documentation
if /I ""%1""==""/h"" goto documentation
if ""%1""==""/?"" goto documentation
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
setlocal
if ""%1""=="""" goto :documentation
if ""%1""==""--help"" goto :documentation
if ""%1""==""-h"" goto :documentation
if ""%1""==""/h"" goto :documentation
goto parseopts
:documentation
echo Usage: %~nx0 [options] [.exs file] [data]
echo.
echo ## General options
echo -v Prints version and exits
echo -e command Evaluates the given command (*)
echo -r file Requires the given files/patterns (*)
echo -S script Finds and executes the given script
echo -pr file Requires the given files/patterns in parallel (*)
echo -pa path Prepends the given path to Erlang code path (*)
echo -pz path Appends the given path to Erlang code path (*)
echo --app app Start the given app and its dependencies (*)
echo --erl switches Switches to be passed down to erlang (*)
echo --name name Makes and assigns a name to the distributed node
echo --sname name Makes and assigns a short name to the distributed node
echo --cookie cookie Sets a cookie for this distributed node
echo --hidden Makes a hidden node
echo --detached Starts the Erlang VM detached from console
echo --werl Uses Erlang's Windows shell GUI
echo --no-halt Does not halt the Erlang VM after execution
echo.
echo -e "COMMAND" Evaluates the given command (*)
echo -h, --help Prints this message and exits
echo -r "FILE" Requires the given files/patterns (*)
echo -S SCRIPT Finds and executes the given script in $PATH
echo -pr "FILE" Requires the given files/patterns in parallel (*)
echo -pa "PATH" Prepends the given path to Erlang code path (*)
echo -pz "PATH" Appends the given path to Erlang code path (*)
echo -v, --version Prints Elixir version and exits
echo.
echo --app APP Starts the given app and its dependencies (*)
echo --erl "SWITCHES" Switches to be passed down to Erlang (*)
echo --eval "COMMAND" Evaluates the given command, same as -e (*)
echo --logger-otp-reports BOOL Enables or disables OTP reporting
echo --logger-sasl-reports BOOL Enables or disables SASL reporting
echo --no-halt Does not halt the Erlang VM after execution
echo --werl Uses Erlang's Windows shell GUI (Windows only)
echo.
echo Options given after the .exs file or -- are passed down to the executed code.
echo Options can be passed to the Erlang runtime using $ELIXIR_ERL_OPTIONS or --erl.
echo.
echo ## Distribution options
echo.
echo The following options are related to node distribution.
echo.
echo --cookie COOKIE Sets a cookie for this distributed node
echo --hidden Makes a hidden node
echo --name NAME Makes and assigns a name to the distributed node
echo --rpc-eval NODE "COMMAND" Evaluates the given command on the given remote node (*)
echo --sname NAME Makes and assigns a short name to the distributed node
echo.
echo ## Release options
echo.
echo The following options are generally used under releases.
echo.
echo --boot "FILE" Uses the given FILE.boot to start the system
echo --boot-var VAR "VALUE" Makes $VAR available as VALUE to FILE.boot (*)
echo --erl-config "FILE" Loads configuration in FILE.config written in Erlang (*)
echo --vm-args "FILE" Passes the contents in file as arguments to the VM
echo.
echo --pipe-to is not supported on Windows. If set, Elixir won't boot.
echo.
echo ** Options marked with (*) can be given more than once.
echo ** Options marked with (*) can be given more than once
echo ** Options given after the .exs file or -- are passed down to the executed code
echo ** Options can be passed to the erlang runtime using ELIXIR_ERL_OPTIONS or --erl
goto end
:parseopts
rem Parameters for Elixir
set parsElixir=
rem Parameters for Erlang
set parsErlang=
rem Make sure we keep a copy of all parameters
set allPars=%*
rem Get the original path name from the batch file
set originPath=%~dp0
rem Optional parameters before the "-extra" parameter
set beforeExtra=
rem Option which determines whether the loop is over
set endLoop=0
rem Flag which determines whether or not to use werl vs erl
set useWerl=0
rem Designates which mode / Elixir component to run as
set runMode="elixir"
rem Designates the path to the current script
set SCRIPT_PATH=%~dp0
rem Designates the path to the ERTS system
set ERTS_BIN=
rem Recursive loop called for each parameter that parses the cmd line parameters
:startloop
set "par=%~1"
if "!par!"=="" (
rem skip if no parameter
goto expand_erl_libs
)
set par="%1"
shift
set par="!par:"=\"!"
if !endLoop! == 1 (
set parsElixir=!parsElixir! !par!
goto startloop
if "%par%"=="" (
rem if no parameters defined
goto :expand_erl_libs
)
if "%par%"=="""" (
rem if no parameters defined - special case for parameter that is already quoted
goto :expand_erl_libs
)
rem ******* EXECUTION OPTIONS **********************
if !par!=="--werl" (set useWerl=1 && goto startloop)
if !par!=="+iex" (set parsElixir=!parsElixir! +iex && set runMode="iex" && goto startloop)
if !par!=="+elixirc" (set parsElixir=!parsElixir! +elixirc && set runMode="elixirc" && goto startloop)
rem ******* EVAL PARAMETERS ************************
if ""==!par:-e=! (
set "VAR=%~1"
set parsElixir=!parsElixir! -e "!VAR:"=\"!"
shift
goto startloop
)
if ""==!par:--eval=! (
set "VAR=%~1"
set parsElixir=!parsElixir! --eval "!VAR:"=\"!"
shift
goto startloop
)
if ""==!par:--rpc-eval=! (
set "VAR=%~2"
set parsElixir=!parsElixir! --rpc-eval %1 "!VAR:"=\"!"
shift
shift
goto startloop
)
rem ******* ELIXIR PARAMETERS **********************
if ""==!par:-r=! (set "parsElixir=!parsElixir! -r %1" && shift && goto startloop)
if ""==!par:-pr=! (set "parsElixir=!parsElixir! -pr %1" && shift && goto startloop)
if ""==!par:-pa=! (set "parsElixir=!parsElixir! -pa %1" && shift && goto startloop)
if ""==!par:-pz=! (set "parsElixir=!parsElixir! -pz %1" && shift && goto startloop)
if ""==!par:-v=! (set "parsElixir=!parsElixir! -v" && goto startloop)
if ""==!par:--app=! (set "parsElixir=!parsElixir! --app %1" && shift && goto startloop)
if ""==!par:--no-halt=! (set "parsElixir=!parsElixir! --no-halt" && goto startloop)
if ""==!par:--remsh=! (set "parsElixir=!parsElixir! --remsh %1" && shift && goto startloop)
if ""==!par:--dot-iex=! (set "parsElixir=!parsElixir! --dot-iex %1" && shift && goto startloop)
IF "%par%"==""--werl"" (Set useWerl=1)
IF "%par%"==""+iex"" (Set runMode="iex")
rem ******* elixir parameters **********************
rem Note: we don't have to do anything with options that don't take an argument
IF """"=="%par:-e=%" (shift)
IF """"=="%par:-r=%" (shift)
IF """"=="%par:-pr=%" (shift)
IF """"=="%par:-pa=%" (shift)
IF """"=="%par:-pz=%" (shift)
IF """"=="%par:--app=%" (shift)
IF """"=="%par:--remsh=%" (shift)
rem ******* ERLANG PARAMETERS **********************
if ""==!par:--boot=! (set "parsErlang=!parsErlang! -boot %1" && shift && goto startloop)
if ""==!par:--boot-var=! (set "parsErlang=!parsErlang! -boot_var %1 %2" && shift && shift && goto startloop)
if ""==!par:--cookie=! (set "parsErlang=!parsErlang! -setcookie %1" && shift && goto startloop)
if ""==!par:--hidden=! (set "parsErlang=!parsErlang! -hidden" && goto startloop)
if ""==!par:--detached=! (set "parsErlang=!parsErlang! -detached" && echo warning: the --detached option is deprecated && goto startloop)
if ""==!par:--erl-config=! (set "parsErlang=!parsErlang! -config %1" && shift && goto startloop)
if ""==!par:--logger-otp-reports=! (set "parsErlang=!parsErlang! -logger handle_otp_reports %1" && shift && goto startloop)
if ""==!par:--logger-sasl-reports=! (set "parsErlang=!parsErlang! -logger handle_sasl_reports %1" && shift && goto startloop)
if ""==!par:--name=! (set "parsErlang=!parsErlang! -name %1" && shift && goto startloop)
if ""==!par:--sname=! (set "parsErlang=!parsErlang! -sname %1" && shift && goto startloop)
if ""==!par:--vm-args=! (set "parsErlang=!parsErlang! -args_file %1" && shift && goto startloop)
if ""==!par:--erl=! (set "beforeExtra=!beforeExtra! %~1" && shift && goto startloop)
if ""==!par:--pipe-to=! (echo --pipe-to : Option is not supported on Windows && goto end)
set endLoop=1
set parsElixir=!parsElixir! !par!
goto startloop
IF """"=="%par:--detached=%" (Set parsErlang=%parsErlang% -detached)
IF """"=="%par:--hidden=%" (Set parsErlang=%parsErlang% -hidden)
IF """"=="%par:--cookie=%" (Set parsErlang=%parsErlang% -setcookie %1 && shift)
IF """"=="%par:--sname=%" (Set parsErlang=%parsErlang% -sname %1 && shift)
IF """"=="%par:--name=%" (Set parsErlang=%parsErlang% -name %1 && shift)
IF """"=="%par:--erl=%" (Set beforeExtra=%beforeExtra% %~1 && shift)
goto:startloop
rem ******* assume all pre-params are parsed ********************
:expand_erl_libs
rem expand all ebin paths as Windows does not support the ..\*\ebin wildcard
rem ******* expand all ebin paths as Windows does not support the ..\*\ebin wildcard ********************
SETLOCAL enabledelayedexpansion
set ext_libs=
for /d %%d in ("!SCRIPT_PATH!..\lib\*.") do (
for /d %%d in ("%originPath%..\lib\*.") do (
set ext_libs=!ext_libs! -pa "%%~fd\ebin"
)
SETLOCAL disabledelayedexpansion
:run
if not !runMode! == "iex" (
set beforeExtra=-noshell -s elixir start_cli !beforeExtra!
IF NOT %runMode% == "iex" (
set beforeExtra=-noshell -s elixir start_cli %beforeExtra%
)
if defined useWerl (
start "" "!ERTS_BIN!werl.exe" !ext_libs! !ELIXIR_ERL_OPTIONS! !parsErlang! !beforeExtra! -extra !parsElixir!
) else (
"!ERTS_BIN!erl.exe" !ext_libs! !ELIXIR_ERL_OPTIONS! !parsErlang! !beforeExtra! -extra !parsElixir!
IF %useWerl% EQU 1 (
start werl.exe %ext_libs% %ELIXIR_ERL_OPTIONS% %parsErlang% %beforeExtra% -extra %*
) ELSE (
erl.exe %ext_libs% %ELIXIR_ERL_OPTIONS% %parsErlang% %beforeExtra% -extra %*
)
:end
endlocal
endlocal
+11 -16
View File
@@ -1,22 +1,17 @@
#!/bin/sh
set -e
if [ $# -eq 0 ] || [ "$1" = "--help" ] || [ "$1" = "-h" ]; then
echo "Usage: $(basename "$0") [elixir switches] [compiler switches] [.ex files]
echo "Usage: `basename $0` [elixir switches] [compiler switches] [.ex files]
-h, --help Prints this message and exits
-o The directory to output compiled files
-v, --version Prints Elixir version and exits
-o The directory to output compiled files
--no-docs Do not attach documentation to compiled modules
--no-debug-info Do not attach debug info to compiled modules
--ignore-module-conflict
--warnings-as-errors Treat warnings as errors and return non-zero exit code
--verbose Print informational messages.
--ignore-module-conflict Does not emit warnings if a module was previously defined
--no-debug-info Does not attach debug info to compiled modules
--no-docs Does not attach documentation to compiled modules
--verbose Prints compilation status
--warnings-as-errors Treats warnings as errors and return non-zero exit code
Options given after -- are passed down to the executed code.
Options can be passed to the Erlang runtime using \$ELIXIR_ERL_OPTIONS.
Options can be passed to the Erlang compiler using \$ERL_COMPILER_OPTIONS." >&2
** Options given after -- are passed down to the executed code
** Options can be passed to the erlang runtime using ELIXIR_ERL_OPTIONS
** Options can be passed to the erlang compiler using ERL_COMPILER_OPTIONS" >&2
exit 1
fi
@@ -26,7 +21,7 @@ readlink_f () {
if [ -h "$filename" ]; then
readlink_f "$(readlink "$filename")"
else
echo "$(pwd -P)/$filename"
echo "`pwd -P`/$filename"
fi
}
+12 -22
View File
@@ -1,12 +1,10 @@
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
setlocal
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
set argc=0
for %%A in (%*) do (
if /I "%%A"=="--help" goto documentation
if /I "%%A"=="-h" goto documentation
if /I "%%A"=="/h" goto documentation
if "%%A"=="/?" goto documentation
set /A argc+=1
if "%%A"=="--help" goto documentation
if "%%A"=="-h" goto documentation
if "%%A"=="/h" goto documentation
set /A argc+=1
)
if %argc%==0 goto documentation
goto run
@@ -14,23 +12,15 @@ goto run
:documentation
echo Usage: %~nx0 [elixir switches] [compiler switches] [.ex files]
echo.
echo -o The directory to output compiled files
echo.
echo --help, -h Prints this message and exits
echo --ignore-module-conflict Does not emit warnings if a module was previously defined
echo --no-debug-info Does not attach debug info to compiled modules
echo --no-docs Does not attach documentation to compiled modules
echo --verbose Prints compilation status
echo --version, -v Prints Elixir version and exits
echo --warnings-as-errors Treats warnings as errors and returns non-zero exit code
echo -o The directory to output compiled files
echo --no-docs Do not attach documentation to compiled modules
echo --no-debug-info Do not attach debug info to compiled modules
echo --ignore-module-conflict
echo --warnings-as-errors Treat warnings as errors and return non-zero exit code
echo --verbose Print informational messages.
echo.
echo ** Options given after -- are passed down to the executed code
echo ** Options can be passed to the Erlang runtime using ELIXIR_ERL_OPTIONS
echo ** Options can be passed to the Erlang compiler using ERL_COMPILER_OPTIONS
goto end
echo ** Options can be passed to the Erlang compiler using ERL_COMPILER_OPTIONS >&2
:run
call "%~dp0\elixir.bat" +elixirc %*
:end
endlocal
+25 -12
View File
@@ -1,16 +1,29 @@
#!/bin/sh
set -e
if [ $# -gt 0 ] && ([ "$1" = "--help" ] || [ "$1" = "-h" ]); then
echo "Usage: `basename $0` [options] [.exs file] [data]
if [ "$1" = "--help" ] || [ "$1" = "-h" ]; then
echo "Usage: $(basename "$0") [options] [.exs file] [data]
-v Prints version
-e \"command\" Evaluates the given command (*)
-r \"file\" Requires the given files/patterns (*)
-S \"script\"   Finds and executes the given script
-pr \"file\" Requires the given files/patterns in parallel (*)
-pa \"path\" Prepends the given path to Erlang code path (*)
-pz \"path\" Appends the given path to Erlang code path (*)
--app \"app\" Start the given app and its dependencies (*)
--erl \"switches\" Switches to be passed down to Erlang (*)
--name \"name\" Makes and assigns a name to the distributed node
--sname \"name\" Makes and assigns a short name to the distributed node
--cookie \"cookie\" Sets a cookie for this distributed node
--hidden Makes a hidden node
--werl Uses Erlang's Windows shell GUI (Windows only)
--detached Starts the Erlang VM detached from console
--remsh \"name\" Connects to a node using a remote shell
--dot-iex \"path\" Overrides default .iex.exs file and uses path instead;
path can be empty, then no file will be loaded
The following options are exclusive to IEx:
--dot-iex \"PATH\" Overrides default .iex.exs file and uses path instead;
path can be empty, then no file will be loaded
--remsh NAME Connects to a node using a remote shell
It accepts all other options listed by \"elixir --help\"." >&2
** Options marked with (*) can be given more than once
** Options given after the .exs file or -- are passed down to the executed code
** Options can be passed to the VM using ELIXIR_ERL_OPTIONS or --erl" >&2
exit 1
fi
@@ -20,10 +33,10 @@ readlink_f () {
if [ -h "$filename" ]; then
readlink_f "$(readlink "$filename")"
else
echo "$(pwd -P)/$filename"
echo "`pwd -P`/$filename"
fi
}
SELF=$(readlink_f "$0")
SCRIPT_PATH=$(dirname "$SELF")
exec "$SCRIPT_PATH"/elixir --no-halt --erl "-noshell -user Elixir.IEx.CLI" +iex "$@"
exec "$SCRIPT_PATH"/elixir --no-halt --erl "-user Elixir.IEx.CLI" +iex "$@"
+4 -27
View File
@@ -1,27 +1,4 @@
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
setlocal
if /I ""%1""==""--help"" goto documentation
if /I ""%1""==""-h"" goto documentation
if /I ""%1""==""/h"" goto documentation
if ""%1""==""/?"" goto documentation
goto run
:documentation
echo Usage: %~nx0 [options] [.exs file] [data]
echo.
echo The following options are exclusive to IEx:
echo.
echo --dot-iex "PATH" Overrides default .iex.exs file and uses path instead;
echo path can be empty, then no file will be loaded
echo --remsh NAME Connects to a node using a remote shell
echo --werl Uses Erlang's Windows shell GUI (Windows only)
echo.
echo Set the IEX_WITH_WERL environment variable to always use werl.
echo It accepts all other options listed by "elixir --help".
goto end
:run
if defined IEX_WITH_WERL (@set __ELIXIR_IEX_FLAGS=--werl) else (set __ELIXIR_IEX_FLAGS=)
call "%~dp0\elixir.bat" --no-halt --erl "-noshell -user Elixir.IEx.CLI" +iex %__ELIXIR_IEX_FLAGS% %*
:end
endlocal
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
@if defined IEX_WITH_WERL (@set __ELIXIR_IEX_FLAGS=--werl) else (set __ELIXIR_IEX_FLAGS=)
call "%~dp0\elixir.bat" +iex --erl "-user Elixir.IEx.CLI" --no-halt %__ELIXIR_IEX_FLAGS% %*
@set __ELIXIR_IEX_FLAGS=
+2 -2
View File
@@ -1,2 +1,2 @@
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
call "%~dp0\elixir.bat" "%~dp0\mix" %*
@if defined ELIXIR_CLI_ECHO (@echo on) else (@echo off)
call "%~dp0\elixir.bat" "%~dp0\mix" %*
+26 -37
View File
@@ -1,7 +1,6 @@
defmodule EEx.SyntaxError do
defexception [:message, :file, :line]
@impl true
def message(exception) do
"#{exception.file}:#{exception.line}: #{exception.message}"
end
@@ -12,7 +11,7 @@ defmodule EEx do
EEx stands for Embedded Elixir. It allows you to embed
Elixir code inside a string in a robust way.
iex> EEx.eval_string("foo <%= bar %>", bar: "baz")
iex> EEx.eval_string "foo <%= bar %>", [bar: "baz"]
"foo baz"
## API
@@ -36,15 +35,13 @@ defmodule EEx do
## Options
All functions in this module accept EEx-related options.
All functions in this module accepts EEx-related options.
They are:
* `:line` - the line to be used as the template start. Defaults to 1.
* `:file` - the file to be used in the template. Defaults to the given
file the template is read from or to "nofile" when compiling from a string.
* `:engine` - the EEx engine to be used for compilation.
* `:trim` - trims whitespace left/right of quotation tags. If a quotation
tag appears on its own in a given line, line endings are also removed.
## Engine
@@ -67,7 +64,7 @@ defmodule EEx do
**must** use the equals sign (`=`). Since everything in
Elixir is an expression, there are no exceptions for this rule.
For example, while some template languages would special-case
`if/2` clauses, they are treated the same in EEx and
`if` clauses, they are treated the same in EEx and
also require `=` in order to have their result printed:
<%= if true do %>
@@ -85,14 +82,14 @@ defmodule EEx do
An example is the `@` macro which allows easy data access
in a template:
iex> EEx.eval_string("<%= @foo %>", assigns: [foo: 1])
iex> EEx.eval_string "<%= @foo %>", assigns: [foo: 1]
"1"
In other words, `<%= @foo %>` translates to:
<%= {:ok, v} = Access.fetch(assigns, :foo); v %>
The `assigns` extension is useful when the number of variables
The assigns extension is useful when the number of variables
required by the template is not specified at compilation time.
"""
@@ -106,21 +103,21 @@ defmodule EEx do
iex> defmodule Sample do
...> require EEx
...> EEx.function_from_string(:def, :sample, "<%= a + b %>", [:a, :b])
...> EEx.function_from_string :def, :sample, "<%= a + b %>", [:a, :b]
...> end
iex> Sample.sample(1, 2)
"3"
"""
defmacro function_from_string(kind, name, source, args \\ [], options \\ []) do
quote bind_quoted: binding() do
info = Keyword.merge([file: __ENV__.file, line: __ENV__.line], options)
args = Enum.map(args, fn arg -> {arg, [line: info[:line]], nil} end)
quote bind_quoted: binding do
info = Keyword.merge [file: __ENV__.file, line: __ENV__.line], options
args = Enum.map args, fn arg -> {arg, [line: info[:line]], nil} end
compiled = EEx.compile_string(source, info)
case kind do
:def -> def unquote(name)(unquote_splicing(args)), do: unquote(compiled)
:defp -> defp unquote(name)(unquote_splicing(args)), do: unquote(compiled)
:def -> def(unquote(name)(unquote_splicing(args)), do: unquote(compiled))
:defp -> defp(unquote(name)(unquote_splicing(args)), do: unquote(compiled))
end
end
end
@@ -142,25 +139,24 @@ defmodule EEx do
# sample.ex
defmodule Sample do
require EEx
EEx.function_from_file(:def, :sample, "sample.eex", [:a, :b])
EEx.function_from_file :def, :sample, "sample.eex", [:a, :b]
end
# iex
Sample.sample(1, 2)
#=> "3"
Sample.sample(1, 2) #=> "3"
"""
defmacro function_from_file(kind, name, file, args \\ [], options \\ []) do
quote bind_quoted: binding() do
info = Keyword.merge(options, file: file, line: 1)
args = Enum.map(args, fn arg -> {arg, [line: 1], nil} end)
quote bind_quoted: binding do
info = Keyword.merge options, [file: file, line: 1]
args = Enum.map args, fn arg -> {arg, [line: 1], nil} end
compiled = EEx.compile_file(file, info)
@external_resource file
@file file
case kind do
:def -> def unquote(name)(unquote_splicing(args)), do: unquote(compiled)
:defp -> defp unquote(name)(unquote_splicing(args)), do: unquote(compiled)
:def -> def(unquote(name)(unquote_splicing(args)), do: unquote(compiled))
:defp -> defp(unquote(name)(unquote_splicing(args)), do: unquote(compiled))
end
end
end
@@ -169,8 +165,7 @@ defmodule EEx do
Gets a string `source` and generate a quoted expression
that can be evaluated by Elixir or compiled to a function.
"""
@spec compile_string(String.t(), keyword) :: Macro.t()
def compile_string(source, options \\ []) when is_binary(source) and is_list(options) do
def compile_string(source, options \\ []) do
EEx.Compiler.compile(source, options)
end
@@ -178,9 +173,8 @@ defmodule EEx do
Gets a `filename` and generate a quoted expression
that can be evaluated by Elixir or compiled to a function.
"""
@spec compile_file(String.t(), keyword) :: Macro.t()
def compile_file(filename, options \\ []) when is_binary(filename) and is_list(options) do
options = Keyword.merge(options, file: filename, line: 1)
def compile_file(filename, options \\ []) do
options = Keyword.merge options, [file: filename, line: 1]
compile_string(File.read!(filename), options)
end
@@ -189,13 +183,11 @@ defmodule EEx do
## Examples
iex> EEx.eval_string("foo <%= bar %>", bar: "baz")
iex> EEx.eval_string "foo <%= bar %>", [bar: "baz"]
"foo baz"
"""
@spec eval_string(String.t(), keyword, keyword) :: any
def eval_string(source, bindings \\ [], options \\ [])
when is_binary(source) and is_list(bindings) and is_list(options) do
def eval_string(source, bindings \\ [], options \\ []) do
compiled = compile_string(source, options)
do_eval(compiled, bindings, options)
end
@@ -209,14 +201,11 @@ defmodule EEx do
foo <%= bar %>
# iex
EEx.eval_file("sample.eex", bar: "baz")
#=> "foo baz"
EEx.eval_file "sample.eex", [bar: "baz"] #=> "foo baz"
"""
@spec eval_file(String.t(), keyword, keyword) :: any
def eval_file(filename, bindings \\ [], options \\ [])
when is_binary(filename) and is_list(bindings) and is_list(options) do
options = Keyword.put(options, :file, filename)
def eval_file(filename, bindings \\ [], options \\ []) do
options = Keyword.put options, :file, filename
compiled = compile_file(filename, options)
do_eval(compiled, bindings, options)
end
+38 -116
View File
@@ -9,121 +9,55 @@ defmodule EEx.Compiler do
and the engine together by handling the tokens and invoking
the engine every time a full expression or text is received.
"""
@spec compile(String.t(), keyword) :: Macro.t()
def compile(source, opts) when is_binary(source) and is_list(opts) do
file = opts[:file] || "nofile"
line = opts[:line] || 1
trim = opts[:trim] || false
def compile(source, opts) do
file = opts[:file] || "nofile"
line = opts[:line] || 1
trim = opts[:trim] || false
case EEx.Tokenizer.tokenize(source, line, trim: trim) do
{:ok, tokens} ->
state = %{
engine: opts[:engine] || @default_engine,
file: file,
line: line,
quoted: [],
start_line: nil
}
init = state.engine.init(opts)
generate_buffer(tokens, init, [], state)
state = %{engine: opts[:engine] || @default_engine,
file: file, line: line, quoted: [], start_line: nil}
generate_buffer(tokens, "", [], state)
{:error, line, message} ->
raise EEx.SyntaxError, line: line, file: file, message: message
end
end
# Generates the buffers by handling each expression from the tokenizer.
# It returns Macro.t/0 or it raises.
# Generates the buffers by handling each expression from the tokenizer
defp generate_buffer([{:text, chars} | rest], buffer, scope, state) do
defp generate_buffer([{:text, chars}|t], buffer, scope, state) do
buffer = state.engine.handle_text(buffer, IO.chardata_to_string(chars))
generate_buffer(rest, buffer, scope, state)
generate_buffer(t, buffer, scope, state)
end
defp generate_buffer([{:expr, line, mark, chars, _} | rest], buffer, scope, state) do
expr = Code.string_to_quoted!(chars, line: line, file: state.file)
defp generate_buffer([{:expr, line, mark, chars}|t], buffer, scope, state) do
expr = Code.string_to_quoted!(chars, [line: line, file: state.file])
buffer = state.engine.handle_expr(buffer, IO.chardata_to_string(mark), expr)
generate_buffer(rest, buffer, scope, state)
generate_buffer(t, buffer, scope, state)
end
defp generate_buffer([{:start_expr, start_line, mark, chars, _} | rest], buffer, scope, state) do
{contents, line, rest} = look_ahead_middle(rest, start_line, chars)
{contents, rest} =
generate_buffer(
rest,
state.engine.handle_begin(buffer),
[contents | scope],
%{state | quoted: [], line: line, start_line: start_line}
)
defp generate_buffer([{:start_expr, start_line, mark, chars}|t], buffer, scope, state) do
{contents, line, t} = look_ahead_text(t, start_line, chars)
{contents, t} = generate_buffer(t, "", [contents|scope],
%{state | quoted: [], line: line, start_line: start_line})
buffer = state.engine.handle_expr(buffer, IO.chardata_to_string(mark), contents)
generate_buffer(rest, buffer, scope, state)
generate_buffer(t, buffer, scope, state)
end
defp generate_buffer(
[{:middle_expr, line, '', chars, _} | rest],
buffer,
[current | scope],
state
) do
defp generate_buffer([{:middle_expr, line, _, chars}|t], buffer, [current|scope], state) do
{wrapped, state} = wrap_expr(current, line, buffer, chars, state)
state = %{state | line: line}
generate_buffer(rest, state.engine.handle_begin(buffer), [wrapped | scope], state)
generate_buffer(t, "", [wrapped|scope], %{state | line: line})
end
defp generate_buffer(
[{:middle_expr, line, modifier, chars, trimmed?} | t],
buffer,
[_ | _] = scope,
state
) do
message =
"unexpected beginning of EEx tag \"<%#{modifier}\" on \"<%#{modifier}#{chars}%>\", " <>
"please remove \"#{modifier}\" accordingly"
:elixir_errors.erl_warn(line, state.file, message)
generate_buffer([{:middle_expr, line, '', chars, trimmed?} | t], buffer, scope, state)
# TODO: Make this an error on Elixir v2.0 since it accidentally worked previously.
# raise EEx.SyntaxError, message: message, file: state.file, line: line
end
defp generate_buffer([{:middle_expr, line, _, chars, _} | _], _buffer, [], state) do
raise EEx.SyntaxError,
message: "unexpected middle of expression <%#{chars}%>",
file: state.file,
line: line
end
defp generate_buffer([{:end_expr, line, '', chars, _} | rest], buffer, [current | _], state) do
defp generate_buffer([{:end_expr, line, _, chars}|t], buffer, [current|_], state) do
{wrapped, state} = wrap_expr(current, line, buffer, chars, state)
tuples = Code.string_to_quoted!(wrapped, line: state.start_line, file: state.file)
tuples = Code.string_to_quoted!(wrapped, [line: state.start_line, file: state.file])
buffer = insert_quoted(tuples, state.quoted)
{buffer, rest}
{buffer, t}
end
defp generate_buffer(
[{:end_expr, line, modifier, chars, trimmed?} | t],
buffer,
[_ | _] = scope,
state
) do
message =
"unexpected beginning of EEx tag \"<%#{modifier}\" on end of " <>
"expression \"<%#{modifier}#{chars}%>\", please remove \"#{modifier}\" accordingly"
:elixir_errors.erl_warn(line, state.file, message)
generate_buffer([{:end_expr, line, '', chars, trimmed?} | t], buffer, scope, state)
# TODO: Make this an error on Elixir v2.0 since it accidentally worked previously.
# raise EEx.SyntaxError, message: message, file: state.file, line: line
end
defp generate_buffer([{:end_expr, line, _, chars, _} | _], _buffer, [], state) do
raise EEx.SyntaxError,
message: "unexpected end of expression <%#{chars}%>",
file: state.file,
line: line
defp generate_buffer([{:end_expr, line, _, chars}|_], _buffer, [], state) do
raise EEx.SyntaxError, message: "unexpected token #{inspect chars}", file: state.file, line: line
end
defp generate_buffer([], buffer, [], state) do
@@ -131,10 +65,8 @@ defmodule EEx.Compiler do
end
defp generate_buffer([], _buffer, _scope, state) do
raise EEx.SyntaxError,
message: "unexpected end of string, expected a closing '<% end %>'",
file: state.file,
line: state.line
raise EEx.SyntaxError, message: "unexpected end of string, expected a closing '<% end %>'",
file: state.file, line: state.line
end
# Creates a placeholder and wrap it inside the expression block
@@ -142,33 +74,23 @@ defmodule EEx.Compiler do
defp wrap_expr(current, line, buffer, chars, state) do
new_lines = List.duplicate(?\n, line - state.line)
key = length(state.quoted)
placeholder = '__EEX__(' ++ Integer.to_charlist(key) ++ ');'
count = current ++ placeholder ++ new_lines ++ chars
new_state = %{state | quoted: [{key, state.engine.handle_end(buffer)} | state.quoted]}
{count, new_state}
placeholder = '__EEX__(' ++ Integer.to_char_list(key) ++ ');'
{current ++ placeholder ++ new_lines ++ chars,
%{state | quoted: [{key, buffer}|state.quoted]}}
end
# Look middle expressions that immediatelly follow a start_expr
# Look text ahead on expressions
defp look_ahead_middle(
[{:text, text}, {:middle_expr, line, _, chars, _} | rest] = tokens,
start,
contents
) do
defp look_ahead_text([{:text, text}, {:middle_expr, line, _, chars}|t]=list, start, contents) do
if only_spaces?(text) do
{contents ++ text ++ chars, line, rest}
{contents ++ text ++ chars, line, t}
else
{contents, start, tokens}
{contents, start, list}
end
end
defp look_ahead_middle([{:middle_expr, line, _, chars, _} | rest], _start, contents) do
{contents ++ chars, line, rest}
end
defp look_ahead_middle(tokens, start, contents) do
{contents, start, tokens}
defp look_ahead_text(t, start, contents) do
{contents, start, t}
end
defp only_spaces?(chars) do
@@ -178,7 +100,7 @@ defmodule EEx.Compiler do
# Changes placeholder to real expression
defp insert_quoted({:__EEX__, _, [key]}, quoted) do
{^key, value} = List.keyfind(quoted, key, 0)
{^key, value} = List.keyfind quoted, key, 0
value
end
@@ -191,7 +113,7 @@ defmodule EEx.Compiler do
end
defp insert_quoted(list, quoted) when is_list(list) do
Enum.map(list, &insert_quoted(&1, quoted))
Enum.map list, &insert_quoted(&1, quoted)
end
defp insert_quoted(other, _quoted) do
+68 -158
View File
@@ -2,102 +2,51 @@ defmodule EEx.Engine do
@moduledoc ~S"""
Basic EEx engine that ships with Elixir.
An engine needs to implement all callbacks below.
An engine needs to implement three functions:
An engine may also `use EEx.Engine` to get the default behaviour
but this is not advised. In such cases, if any of the callbacks
are overridden, they must call `super()` to delegate to the
underlying `EEx.Engine`.
* `handle_body(quoted)` - receives the final built quoted
expression, should do final post-processing and return a
quoted expression.
* `handle_text(buffer, text)` - it receives the buffer,
the text and must return a new quoted expression.
* `handle_expr(buffer, marker, expr)` - it receives the buffer,
the marker, the expr and must return a new quoted expression.
The marker is what follows exactly after `<%`. For example,
`<% foo %>` has an empty marker, but `<%= foo %>` has `"="`
as marker. The allowed markers so far are: `""` and `"="`.
Read `handle_expr/3` below for more information about the markers
implemented by default by this engine.
`EEx.Engine` can be used directly if one desires to use the
default implementations for the functions above.
"""
@type state :: term
@doc """
Called at the beginning of every template.
It must return the initial state.
"""
@callback init(opts :: keyword) :: state
@doc """
Called at the end of every template.
It must return Elixir's quoted expressions for the template.
"""
@callback handle_body(state) :: Macro.t()
@doc """
Called for the text/static parts of a template.
It must return the updated state.
"""
@callback handle_text(state, text :: String.t()) :: state
@doc """
Called for the dynamic/code parts of a template.
The marker is what follows exactly after `<%`. For example,
`<% foo %>` has an empty marker, but `<%= foo %>` has `"="`
as marker. The allowed markers so far are:
* `""`
* `"="`
* `"/"`
* `"|"`
Markers `"/"` and `"|"` are only for use in custom EEx engines
and are not implemented by default. Using them without an
appropriate implementation raises `EEx.SyntaxError`.
It must return the updated state.
"""
@callback handle_expr(state, marker :: String.t(), expr :: Macro.t()) :: state
@doc """
Invoked at the beginning of every nesting.
It must return a new state that is used only inside the nesting.
Once the nesting terminates, the current `state` is resumed.
"""
@callback handle_begin(state) :: state
@doc """
Invokes at the end of a nesting.
It must return Elixir's quoted expressions for the nesting.
"""
@callback handle_end(state) :: Macro.t()
@callback handle_body(Macro.t) :: Macro.t
@callback handle_text(Macro.t, String.t) :: Macro.t
@callback handle_expr(Macro.t, String.t, Macro.t) :: Macro.t
@doc false
defmacro __using__(_) do
quote do
@behaviour EEx.Engine
def init(opts) do
EEx.Engine.init(opts)
def handle_body(body) do
EEx.Engine.handle_body(body)
end
def handle_body(state) do
EEx.Engine.handle_body(state)
def handle_text(buffer, text) do
EEx.Engine.handle_text(buffer, text)
end
def handle_begin(state) do
EEx.Engine.handle_begin(state)
def handle_expr(buffer, marker, expr) do
EEx.Engine.handle_expr(buffer, marker, expr)
end
def handle_end(state) do
EEx.Engine.handle_end(state)
end
def handle_text(state, text) do
EEx.Engine.handle_text(state, text)
end
def handle_expr(state, marker, expr) do
EEx.Engine.handle_expr(state, marker, expr)
end
defoverridable EEx.Engine
defoverridable [handle_body: 1, handle_expr: 3, handle_text: 2]
end
end
@@ -110,110 +59,71 @@ defmodule EEx.Engine do
This can be added to any custom engine by invoking
`handle_assign/1` with `Macro.prewalk/2`:
def handle_expr(state, token, expr) do
def handle_expr(buffer, token, expr) do
expr = Macro.prewalk(expr, &EEx.Engine.handle_assign/1)
super(state, token, expr)
EEx.Engine.handle_expr(buffer, token, expr)
end
"""
@spec handle_assign(Macro.t()) :: Macro.t()
def handle_assign({:@, meta, [{name, _, atom}]}) when is_atom(name) and is_atom(atom) do
line = meta[:line] || 0
quote(line: line, do: EEx.Engine.fetch_assign!(var!(assigns), unquote(name)))
quote line: line, do: EEx.Engine.fetch_assign!(var!(assigns), unquote(name))
end
def handle_assign(arg) do
arg
end
@doc false
# TODO: Raise on v2.0
@spec fetch_assign!(Access.t(), Access.key()) :: term | nil
# TODO: raise on 1.3 or 1.4
def fetch_assign!(assigns, key) do
case Access.fetch(assigns, key) do
{:ok, val} ->
val
:error ->
keys = Enum.map(assigns, &elem(&1, 0))
IO.warn(
"assign @#{key} not available in EEx template. " <>
"Please ensure all assigns are given as options. " <>
"Available assigns: #{inspect(keys)}"
)
IO.write :stderr, "warning: assign @#{key} not available in eex template. " <>
"Please ensure all assigns are given as options. " <>
"Available assigns: #{inspect keys}\n" <>
Exception.format_stacktrace
nil
end
end
@doc false
def init(_opts) do
%{
binary: [],
dynamic: [],
vars_count: 0
}
@doc """
The default implementation simply returns the given expression.
"""
def handle_body(quoted) do
quoted
end
@doc false
def handle_begin(state) do
check_state!(state)
%{state | binary: [], dynamic: []}
@doc """
The default implementation simply concatenates text to the buffer.
"""
def handle_text(buffer, text) do
quote do: unquote(buffer) <> unquote(text)
end
@doc false
def handle_end(quoted) do
handle_body(quoted)
@doc """
Implements expressions according to the markers.
<% Elixir expression - inline with output %>
<%= Elixir expression - replace with result %>
All other markers are not implemented by this engine.
"""
@spec handle_expr(Macro.t, String.t, Macro.t) :: Macro.t
def handle_expr(buffer, "=", expr) do
quote do
tmp1 = unquote(buffer)
tmp1 <> String.Chars.to_string(unquote(expr))
end
end
@doc false
def handle_body(state) do
check_state!(state)
%{binary: binary, dynamic: dynamic} = state
binary = {:<<>>, [], Enum.reverse(binary)}
dynamic = [binary | dynamic]
{:__block__, [], Enum.reverse(dynamic)}
end
@doc false
def handle_text(state, text) do
%{binary: binary} = state
%{state | binary: [text | binary]}
end
@doc false
def handle_expr(state, "=", ast) do
%{binary: binary, dynamic: dynamic, vars_count: vars_count} = state
var = Macro.var(:"arg#{vars_count}", __MODULE__)
ast =
quote do
unquote(var) = String.Chars.to_string(unquote(ast))
end
segment =
quote do
unquote(var) :: binary
end
%{state | dynamic: [ast | dynamic], binary: [segment | binary], vars_count: vars_count + 1}
end
def handle_expr(state, "", ast) do
%{dynamic: dynamic} = state
%{state | dynamic: [ast | dynamic]}
end
def handle_expr(_state, marker, _ast) when marker in ["/", "|"] do
raise EEx.SyntaxError,
"unsupported EEx syntax <%#{marker} %> (the syntax is valid but not supported by the current EEx engine)"
end
defp check_state!(%{binary: _, dynamic: _, vars_count: _}), do: :ok
defp check_state!(state) do
raise "unexpected EEx.Engine state: #{inspect(state)}. " <>
"This typically means a bug or an outdated EEx.Engine or tool"
def handle_expr(buffer, "", expr) do
quote do
tmp2 = unquote(buffer)
unquote(expr)
tmp2
end
end
end
+2 -3
View File
@@ -24,12 +24,11 @@ defmodule EEx.SmartEngine do
# sample.ex
defmodule Sample do
require EEx
EEx.function_from_file(:def, :sample, "sample.eex", [:assigns])
EEx.function_from_file :def, :sample, "sample.eex", [:assigns]
end
# iex
Sample.sample(a: 1, b: 2)
#=> "3"
Sample.sample(a: 1, b: 2) #=> "3"
"""
+65 -92
View File
@@ -1,55 +1,39 @@
defmodule EEx.Tokenizer do
@moduledoc false
@type content :: IO.chardata()
@type line :: non_neg_integer
@type marker :: '=' | '/' | '|' | ''
@type trimmed? :: boolean
@type token ::
{:text, content}
| {:expr | :start_expr | :middle_expr | :end_expr, line, marker, content, trimmed?}
@spaces [?\s, ?\t]
@closing_brackets ')]}'
@doc """
Tokenizes the given charlist or binary.
Tokenizes the given char list or binary.
It returns {:ok, list} with the following tokens:
* `{:text, content}`
* `{:expr, line, marker, content, trimmed?}`
* `{:start_expr, line, marker, content, trimmed?}`
* `{:middle_expr, line, marker, content, trimmed?}`
* `{:end_expr, line, marker, content, trimmed?}`
* `{:text, contents}`
* `{:expr, line, marker, contents}`
* `{:start_expr, line, marker, contents}`
* `{:middle_expr, line, marker, contents}`
* `{:end_expr, line, marker, contents}`
Or `{:error, line, error}` in case of errors.
"""
@spec tokenize(binary | charlist, line, keyword) :: {:ok, [token]} | {:error, line, String.t()}
def tokenize(bin, line, opts \\ [])
def tokenize(bin, line, opts)
when is_binary(bin) and is_integer(line) and line >= 0 and is_list(opts) do
tokenize(String.to_charlist(bin), line, opts)
def tokenize(bin, line, opts) when is_binary(bin) do
tokenize(String.to_char_list(bin), line, opts)
end
def tokenize(list, line, opts)
when is_list(list) and is_integer(line) and line >= 0 and is_list(opts) do
def tokenize(list, line, opts) do
tokenize(list, line, opts, [], [])
end
defp tokenize('<%%' ++ t, line, opts, buffer, acc) do
tokenize(t, line, opts, [?%, ?< | buffer], acc)
tokenize t, line, opts, [?%, ?<|buffer], acc
end
defp tokenize('<%#' ++ t, line, opts, buffer, acc) do
case expr(t, line, []) do
{:error, _, _} = error ->
error
{:error, _, _} = error -> error
{:ok, _, new_line, rest} ->
{_, rest, new_line, buffer} = trim_if_needed(rest, new_line, opts, buffer, acc)
tokenize(rest, new_line, opts, buffer, acc)
{rest, new_line, buffer} = trim_if_needed(rest, new_line, opts, buffer, acc)
tokenize rest, new_line, opts, buffer, acc
end
end
@@ -57,24 +41,22 @@ defmodule EEx.Tokenizer do
{marker, t} = retrieve_marker(t)
case expr(t, line, []) do
{:error, _, _} = error ->
error
{:error, _, _} = error -> error
{:ok, expr, new_line, rest} ->
token = token_name(expr)
{trimmed?, rest, new_line, buffer} = trim_if_needed(rest, new_line, opts, buffer, acc)
acc = tokenize_text(buffer, acc)
final = {token, line, marker, Enum.reverse(expr), trimmed?}
tokenize(rest, new_line, opts, [], [final | acc])
{rest, new_line, buffer} = trim_if_needed(rest, new_line, opts, buffer, acc)
acc = tokenize_text(buffer, acc)
final = {token, line, marker, Enum.reverse(expr)}
tokenize rest, new_line, opts, [], [final | acc]
end
end
defp tokenize('\n' ++ t, line, opts, buffer, acc) do
tokenize(t, line + 1, opts, [?\n | buffer], acc)
tokenize t, line + 1, opts, [?\n|buffer], acc
end
defp tokenize([h | t], line, opts, buffer, acc) do
tokenize(t, line, opts, [h | buffer], acc)
defp tokenize([h|t], line, opts, buffer, acc) do
tokenize t, line, opts, [h|buffer], acc
end
defp tokenize([], _line, _opts, buffer, acc) do
@@ -83,8 +65,8 @@ defmodule EEx.Tokenizer do
# Retrieve marker for <%
defp retrieve_marker([marker | t]) when marker in [?=, ?/, ?|] do
{[marker], t}
defp retrieve_marker('=' ++ t) do
{'=', t}
end
defp retrieve_marker(t) do
@@ -93,16 +75,16 @@ defmodule EEx.Tokenizer do
# Tokenize an expression until we find %>
defp expr([?%, ?> | t], line, buffer) do
defp expr([?%, ?>|t], line, buffer) do
{:ok, buffer, line, t}
end
defp expr('\n' ++ t, line, buffer) do
expr(t, line + 1, [?\n | buffer])
expr t, line + 1, [?\n|buffer]
end
defp expr([h | t], line, buffer) do
expr(t, line, [h | buffer])
defp expr([h|t], line, buffer) do
expr t, line, [h|buffer]
end
defp expr([], line, _buffer) do
@@ -114,30 +96,27 @@ defmodule EEx.Tokenizer do
#
# Start tokens finish with "do" and "fn ->"
# Middle tokens are marked with "->" or keywords
# End tokens contain only the end word and optionally
# combinations of ")", "]" and "}".
# End tokens contain only the end word and optionally ")"
defp token_name([h | t]) when h in @spaces do
defp token_name([h|t]) when h in [?\s, ?\t, ?)] do
token_name(t)
end
defp token_name('od' ++ [h | rest]) when h in @spaces or h in @closing_brackets do
case tokenize_rest(rest) do
{:ok, [{:end, _} | _]} -> :middle_expr
_ -> :start_expr
end
defp token_name('od' ++ [h|_]) when h in [?\s, ?\t, ?)] do
:start_expr
end
defp token_name('>-' ++ rest) do
case tokenize_rest(rest) do
{:ok, [{:end, _} | _]} ->
:middle_expr
rest = Enum.reverse(rest)
# Check if there is a "fn" token and, if so, it is not
# followed by an "end" token. If this is the case, we
# are on a start expr.
{:ok, tokens} ->
tokens = Enum.reverse(tokens)
# Tokenize the remaining passing check_terminators as
# false, which relax the tokenizer to not error on
# unmatched pairs. Then, we check if there is a "fn"
# token and, if so, it is not followed by an "end"
# token. If this is the case, we are on a start expr.
case :elixir_tokenizer.tokenize(rest, 1, file: "eex", check_terminators: false) do
{:ok, _line, _column, tokens} ->
tokens = Enum.reverse(tokens)
fn_index = fn_index(tokens)
if fn_index && end_index(tokens) > fn_index do
@@ -145,37 +124,27 @@ defmodule EEx.Tokenizer do
else
:middle_expr
end
_error ->
:middle_expr
end
end
defp token_name('esle' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('retfa' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('hctac' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('esle' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('retfa' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('hctac' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('eucser' ++ t), do: check_spaces(t, :middle_expr)
defp token_name('dne' ++ t), do: check_spaces(t, :end_expr)
defp token_name(rest) do
case Enum.drop_while(rest, &(&1 in @spaces or &1 in @closing_brackets)) do
'dne' ++ t -> check_spaces(t, :end_expr)
_ -> :expr
end
end
# Tokenize the remaining passing check_terminators as false,
# which relax the tokenizer to not error on unmatched pairs.
# If the tokens start with an "end" we have a middle expr.
defp tokenize_rest(rest) do
:elixir_tokenizer.tokenize(Enum.reverse(rest), 1, file: "eex", check_terminators: false)
defp token_name(_) do
:expr
end
defp fn_index(tokens) do
Enum.find_index(tokens, fn
Enum.find_index tokens, fn
{:fn_paren, _} -> true
{:fn, _} -> true
_ -> false
end)
{:fn, _} -> true
_ -> false
end
end
defp end_index(tokens) do
@@ -183,7 +152,7 @@ defmodule EEx.Tokenizer do
end
defp check_spaces(string, token) do
if Enum.all?(string, &(&1 in @spaces)) do
if Enum.all?(string, &(&1 in [?\s, ?\t])) do
token
else
:expr
@@ -204,20 +173,24 @@ defmodule EEx.Tokenizer do
# If trim mode is enabled and the token is on a line with
# only itself and whitespace, trim the whitespace around it,
# including the line break following it if there is one.
defp trim_if_needed(rest, line, opts, buffer, acc) do
with true <- opts[:trim],
{true, new_buffer} <- trim_left(buffer, acc),
{true, new_rest, new_line} <- trim_right(rest, line) do
{true, new_rest, new_line, new_buffer}
original = {rest, line, buffer}
if opts[:trim] do
case {trim_left(buffer, acc), trim_right(rest, line)} do
{{true, new_buffer}, {true, new_rest, new_line}} ->
{new_rest, new_line, new_buffer}
_ ->
original
end
else
_ -> {false, rest, line, buffer}
original
end
end
defp trim_left(buffer, acc) do
case {trim_whitespace(buffer), acc} do
{[?\n | _] = trimmed_buffer, _} -> {true, trimmed_buffer}
{[], [{_, _, _, _, true} | _]} -> {true, []}
{[?\n|_] = trimmed_buffer, _} -> {true, trimmed_buffer}
{[], []} -> {true, []}
_ -> {false, buffer}
end
@@ -225,14 +198,14 @@ defmodule EEx.Tokenizer do
defp trim_right(rest, line) do
case trim_whitespace(rest) do
[?\r, ?\n | trimmed_rest] -> {true, trimmed_rest, line + 1}
[?\n | trimmed_rest] -> {true, trimmed_rest, line + 1}
[?\r, ?\n|trimmed_rest] -> {true, trimmed_rest, line + 1}
[?\n|trimmed_rest] -> {true, trimmed_rest, line + 1}
[] -> {true, [], line}
_ -> {false, rest, line}
end
end
defp trim_whitespace([h | t]) when h in @spaces do
defp trim_whitespace([h|t]) when h == ?\s or h == ?\t do
trim_whitespace(t)
end
+4 -6
View File
@@ -1,11 +1,9 @@
defmodule EEx.MixProject do
defmodule EEx.Mixfile do
use Mix.Project
def project do
[
app: :eex,
version: System.version(),
build_per_environment: false
]
[app: :eex,
version: System.version,
build_per_environment: false]
end
end
+13 -28
View File
@@ -1,51 +1,36 @@
Code.require_file("../test_helper.exs", __DIR__)
Code.require_file "../test_helper.exs", __DIR__
defmodule EEx.SmartEngineTest do
# TODO: Make this async: true once capture_io is removed
use ExUnit.Case
use ExUnit.Case, async: true
test "evaluates simple string" do
assert_eval("foo bar", "foo bar")
assert_eval "foo bar", "foo bar"
end
test "evaluates with assigns as keywords" do
assert_eval("1", "<%= @foo %>", assigns: [foo: 1])
assert_eval "1", "<%= @foo %>", assigns: [foo: 1]
end
test "evaluates with assigns as a map" do
assert_eval("1", "<%= @foo %>", assigns: %{foo: 1})
end
test "error with missing assigns" do
stderr =
ExUnit.CaptureIO.capture_io(:stderr, fn ->
assert_eval("", "<%= @foo %>", assigns: %{})
end)
assert stderr =~ "assign @foo not available in EEx template"
assert_eval "1", "<%= @foo %>", assigns: %{foo: 1}
end
test "evaluates with loops" do
assert_eval("1\n2\n3\n", "<%= for x <- [1, 2, 3] do %><%= x %>\n<% end %>")
assert_eval "1\n2\n3\n", "<%= for x <- [1, 2, 3] do %><%= x %>\n<% end %>"
end
test "preserves line numbers in assignments" do
result = EEx.compile_string("foo\n<%= @hello %>", engine: EEx.SmartEngine)
test "compiled preserved line numbers" do
result = EEx.compile_string("<%= @hello %>", engine: EEx.SmartEngine)
Macro.prewalk(result, fn
{_left, meta, [_, :hello]} ->
assert Keyword.get(meta, :line) == 2
send(self(), :found)
node ->
node
{_left, meta, _right} ->
assert Keyword.get(meta, :line, 0) in [0, 1]
_ ->
:ok
end)
assert_received :found
end
defp assert_eval(expected, actual, binding \\ []) do
result = EEx.eval_string(actual, binding, file: __ENV__.file, engine: EEx.SmartEngine)
result = EEx.eval_string(actual, binding, file: __ENV__.file)
assert result == expected
end
end
+56 -116
View File
@@ -1,4 +1,4 @@
Code.require_file("../test_helper.exs", __DIR__)
Code.require_file "../test_helper.exs", __DIR__
defmodule EEx.TokenizerTest do
use ExUnit.Case, async: true
@@ -14,196 +14,137 @@ defmodule EEx.TokenizerTest do
test "strings with embedded code" do
assert T.tokenize('foo <% bar %>', 1) ==
{:ok, [{:text, 'foo '}, {:expr, 1, '', ' bar ', false}]}
{:ok, [{:text, 'foo '}, {:expr, 1, '', ' bar '}]}
end
test "strings with embedded equals code" do
assert T.tokenize('foo <%= bar %>', 1) ==
{:ok, [{:text, 'foo '}, {:expr, 1, '=', ' bar ', false}]}
end
test "strings with embedded slash code" do
assert T.tokenize('foo <%/ bar %>', 1) ==
{:ok, [{:text, 'foo '}, {:expr, 1, '/', ' bar ', false}]}
end
test "strings with embedded pipe code" do
assert T.tokenize('foo <%| bar %>', 1) ==
{:ok, [{:text, 'foo '}, {:expr, 1, '|', ' bar ', false}]}
{:ok, [{:text, 'foo '}, {:expr, 1, '=', ' bar '}]}
end
test "strings with more than one line" do
assert T.tokenize('foo\n<%= bar %>', 1) ==
{:ok, [{:text, 'foo\n'}, {:expr, 2, '=', ' bar ', false}]}
{:ok, [{:text, 'foo\n'}, {:expr, 2, '=', ' bar '}]}
end
test "strings with more than one line and expression with more than one line" do
string = '''
foo <%= bar
foo <%= bar
baz %>
<% foo %>
'''
baz %>
<% foo %>
'''
exprs = [
assert T.tokenize(string, 1) == {:ok, [
{:text, 'foo '},
{:expr, 1, '=', ' bar\n\nbaz ', false},
{:expr, 1, '=', ' bar\n\nbaz '},
{:text, '\n'},
{:expr, 4, '', ' foo ', false},
{:expr, 4, '', ' foo '},
{:text, '\n'}
]
assert T.tokenize(string, 1) == {:ok, exprs}
]}
end
test "quotation" do
assert T.tokenize('foo <%% true %>', 1) == {:ok, [{:text, 'foo <% true %>'}]}
assert T.tokenize('foo <%% true %>', 1) == {:ok, [
{:text, 'foo <% true %>'}
]}
end
test "quotation with do/end" do
assert T.tokenize('foo <%% true do %>bar<%% end %>', 1) ==
{:ok, [{:text, 'foo <% true do %>bar<% end %>'}]}
assert T.tokenize('foo <%% true do %>bar<%% end %>', 1) == {:ok, [
{:text, 'foo <% true do %>bar<% end %>'}
]}
end
test "quotation with interpolation" do
exprs = [
assert T.tokenize('a <%% b <%= c %> <%= d %> e %> f', 1) == {:ok, [
{:text, 'a <% b '},
{:expr, 1, '=', ' c ', false},
{:expr, 1, '=', ' c '},
{:text, ' '},
{:expr, 1, '=', ' d ', false},
{:expr, 1, '=', ' d '},
{:text, ' e %> f'}
]
]}
assert T.tokenize('a <%% b <%= c %> <%= d %> e %> f', 1) == {:ok, exprs}
end
test "improperly formatted quotation with interpolation" do
exprs = [
assert T.tokenize('<%%% a <%%= b %> c %>', 1) == {:ok, [
{:text, '<%% a <%= b %> c %>'}
]
assert T.tokenize('<%%% a <%%= b %> c %>', 1) == {:ok, exprs}
]}
end
test "comments" do
exprs = [
assert T.tokenize('foo <%# true %>', 1) == {:ok, [
{:text, 'foo '}
]
assert T.tokenize('foo <%# true %>', 1) == {:ok, exprs}
]}
end
test "comments with do/end" do
exprs = [
assert T.tokenize('foo <%# true do %>bar<%# end %>', 1) == {:ok, [
{:text, 'foo bar'}
]
assert T.tokenize('foo <%# true do %>bar<%# end %>', 1) == {:ok, exprs}
]}
end
test "strings with embedded do end" do
exprs = [
assert T.tokenize('foo <% if true do %>bar<% end %>', 1) == {:ok, [
{:text, 'foo '},
{:start_expr, 1, '', ' if true do ', false},
{:start_expr, 1, '', ' if true do '},
{:text, 'bar'},
{:end_expr, 1, '', ' end ', false}
]
assert T.tokenize('foo <% if true do %>bar<% end %>', 1) == {:ok, exprs}
{:end_expr, 1, '', ' end '}
]}
end
test "strings with embedded -> end" do
exprs = [
assert T.tokenize('foo <% cond do %><% false -> %>bar<% true -> %>baz<% end %>', 1) == {:ok, [
{:text, 'foo '},
{:start_expr, 1, '', ' cond do ', false},
{:middle_expr, 1, '', ' false -> ', false},
{:start_expr, 1, '', ' cond do '},
{:middle_expr, 1, '', ' false -> '},
{:text, 'bar'},
{:middle_expr, 1, '', ' true -> ', false},
{:middle_expr, 1, '', ' true -> '},
{:text, 'baz'},
{:end_expr, 1, '', ' end ', false}
]
assert T.tokenize('foo <% cond do %><% false -> %>bar<% true -> %>baz<% end %>', 1) ==
{:ok, exprs}
end
test "strings with multiple callbacks" do
exprs = [
{:start_expr, 1, '=', ' a fn -> ', false},
{:text, 'foo'},
{:middle_expr, 1, '', ' end, fn -> ', false},
{:text, 'bar'},
{:end_expr, 1, '', ' end ', false}
]
assert T.tokenize('<%= a fn -> %>foo<% end, fn -> %>bar<% end %>', 1) == {:ok, exprs}
end
test "strings with callback followed by do block" do
exprs = [
{:start_expr, 1, '=', ' a fn -> ', false},
{:text, 'foo'},
{:middle_expr, 1, '', ' end do ', false},
{:text, 'bar'},
{:end_expr, 1, '', ' end ', false}
]
assert T.tokenize('<%= a fn -> %>foo<% end do %>bar<% end %>', 1) == {:ok, exprs}
{:end_expr, 1, '', ' end '}
]}
end
test "strings with embedded keywords blocks" do
exprs = [
assert T.tokenize('foo <% if true do %>bar<% else %>baz<% end %>', 1) == {:ok, [
{:text, 'foo '},
{:start_expr, 1, '', ' if true do ', false},
{:start_expr, 1, '', ' if true do '},
{:text, 'bar'},
{:middle_expr, 1, '', ' else ', false},
{:middle_expr, 1, '', ' else '},
{:text, 'baz'},
{:end_expr, 1, '', ' end ', false}
]
assert T.tokenize('foo <% if true do %>bar<% else %>baz<% end %>', 1) == {:ok, exprs}
{:end_expr, 1, '', ' end '}
]}
end
test "trim mode" do
template = '\t<%= if true do %> \n TRUE \n <% else %>\n FALSE \n <% end %> '
exprs = [
{:start_expr, 1, '=', ' if true do ', true},
assert T.tokenize(template, 1, trim: true) == {:ok, [
{:start_expr, 1, '=', ' if true do '},
{:text, ' TRUE \n'},
{:middle_expr, 3, '', ' else ', true},
{:middle_expr, 3, '', ' else '},
{:text, ' FALSE \n'},
{:end_expr, 5, '', ' end ', true}
]
assert T.tokenize(template, 1, trim: true) == {:ok, exprs}
{:end_expr, 5, '', ' end '}
]}
end
test "trim mode with comment" do
exprs = [
assert T.tokenize(' <%# comment %> \n123', 1, trim: true) == {:ok, [
{:text, '123'}
]
assert T.tokenize(' <%# comment %> \n123', 1, trim: true) == {:ok, exprs}
]}
end
test "trim mode with CRLF" do
exprs = [
assert T.tokenize('0\r\n <%= 12 %> \r\n34', 1, trim: true) == {:ok, [
{:text, '0\r\n'},
{:expr, 2, '=', ' 12 ', true},
{:expr, 2, '=', ' 12 '},
{:text, '34'}
]
assert T.tokenize('0\r\n <%= 12 %> \r\n34', 1, trim: true) == {:ok, exprs}
]}
end
test "trim mode set to false" do
exprs = [
assert T.tokenize(' <%= 12 %> \n', 1, trim: false) == {:ok, [
{:text, ' '},
{:expr, 1, '=', ' 12 ', false},
{:expr, 1, '=', ' 12 '},
{:text, ' \n'}
]
assert T.tokenize(' <%= 12 %> \n', 1, trim: false) == {:ok, exprs}
]}
end
test "trim mode no false positives" do
@@ -217,6 +158,5 @@ defmodule EEx.TokenizerTest do
test "raise syntax error when there is start mark and no end mark" do
assert T.tokenize('foo <% :bar', 1) == {:error, 1, "missing token '%>'"}
assert T.tokenize('<%# true ', 1) == {:error, 1, "missing token '%>'"}
end
end
+292 -522
View File
@@ -1,36 +1,39 @@
Code.require_file("test_helper.exs", __DIR__)
Code.require_file "test_helper.exs", __DIR__
require EEx
defmodule EExTest.Compiled do
def before_compile do
{__ENV__.line, hd(tl(get_stacktrace()))}
fill_in_stacktrace
{__ENV__.line, hd(tl(System.stacktrace))}
end
EEx.function_from_string(:def, :string_sample, "<%= a + b %>", [:a, :b])
EEx.function_from_string :def, :string_sample, "<%= a + b %>", [:a, :b]
filename = Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")
EEx.function_from_file(:defp, :private_file_sample, filename, [:bar])
EEx.function_from_file :defp, :private_file_sample, filename, [:bar]
filename = Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")
EEx.function_from_file(:def, :public_file_sample, filename, [:bar])
EEx.function_from_file :def, :public_file_sample, filename, [:bar]
def file_sample(arg), do: private_file_sample(arg)
def after_compile do
{__ENV__.line, hd(tl(get_stacktrace()))}
fill_in_stacktrace
{__ENV__.line, hd(tl(System.stacktrace))}
end
@file "unknown"
def unknown do
{__ENV__.line, hd(tl(get_stacktrace()))}
fill_in_stacktrace
{__ENV__.line, hd(tl(System.stacktrace))}
end
defp get_stacktrace do
defp fill_in_stacktrace do
try do
:erlang.error("failed")
rescue
_ -> __STACKTRACE__
:erlang.error "failed"
catch
:error, _ -> System.stacktrace
end
end
end
@@ -50,537 +53,355 @@ defmodule EExTest do
doctest EEx.Engine
doctest EEx.SmartEngine
describe "evaluates" do
test "simple string" do
assert_eval("foo bar", "foo bar")
end
test "evaluates simple string" do
assert_eval "foo bar", "foo bar"
end
test "Unicode" do
template = """
• <%= "•" %> •
<%= "Jößé Vâlìm" %> Jößé Vâlìm
"""
test "evaluates with embedded" do
assert_eval "foo bar", "foo <%= :bar %>"
end
assert_eval(" • • •\n Jößé Vâlìm Jößé Vâlìm\n", template)
end
test "evaluates with embedded and the binding" do
assert EEx.eval_string("foo <%= bar %>", [bar: 1]) == "foo 1"
end
test "trim mode" do
string = "<%= 123 %> \n456\n <%= 789 %>"
expected = "123456\n789"
assert_eval(expected, string, [], trim: true)
end
test "evaluates with embedded do end" do
assert_eval "foo bar", "foo <%= if true do %>bar<% end %>"
end
test "trim mode with middle expression" do
string = """
<%= cond do %>
<% false -> %>
this
<% true -> %>
that
<% end %>
"""
test "evaluates with embedded do end and eval the expression" do
assert_eval "foo ", "foo <%= if false do %>bar<% end %>"
end
expected = " that\n"
assert_eval(expected, string, [], trim: true)
end
test "evaluates with embedded do end and nested print expression" do
assert_eval "foo bar", "foo <%= if true do %><%= :bar %><% end %>"
end
test "trim mode with multiple lines" do
string = """
<%= "First line" %>
<%= "Second line" %>
<%= "Third line" %>
<%= "Fourth line" %>
"""
test "evaluates with embedded do end and nested expressions" do
assert_eval "foo bar baz", "foo <%= if true do %>bar <% Process.put(:eex_text, 1) %><%= :baz %><% end %>"
assert Process.get(:eex_text) == 1
end
expected = "First lineSecond lineThird lineFourth line"
assert_eval(expected, string, [], trim: true)
end
test "evaluates with embedded middle expression" do
assert_eval "foo bar", "foo <%= if true do %>bar<% else %>baz<% end %>"
end
test "embedded code" do
assert_eval("foo bar", "foo <%= :bar %>")
end
test "evaluates with embedded middle expression and eval the expression" do
assert_eval "foo baz", "foo <%= if false do %>bar<% else %>baz<% end %>"
end
test "embedded code with binding" do
assert EEx.eval_string("foo <%= bar %>", bar: 1) == "foo 1"
end
test "evaluates with nested start expression" do
assert_eval "foo bar", "foo <%= if true do %><%= if true do %>bar<% end %><% end %>"
end
test "embedded code with do end when true" do
assert_eval("foo bar", "foo <%= if true do %>bar<% end %>")
end
test "evaluates with nested middle expression" do
assert_eval "foo baz", "foo <%= if true do %><%= if false do %>bar<% else %>baz<% end %><% end %>"
end
test "embedded code with do end when false" do
assert_eval("foo ", "foo <%= if false do %>bar<% end %>")
end
test "evaluates with parentheses after end in end token" do
assert_eval " 101 102 103 ", "<%= Enum.map([1,2,3], (fn x -> %> <%= 100 + x %> <% end) ) %>"
end
test "embedded code with do preceeded by bracket" do
assert_eval("foo bar", "foo <%= if {true}do %>bar<% end %>")
assert_eval("foo bar", "foo <%= if (true)do %>bar<% end %>")
assert_eval("foo bar", "foo <%= if [true]do %>bar<% end %>")
end
test "evaluates with defined variable" do
assert_eval "foo 1", "foo <% bar = 1 %><%= bar %>"
end
test "embedded code with do end and expression" do
assert_eval("foo bar", "foo <%= if true do %><%= :bar %><% end %>")
end
test "evaluates with require code" do
assert_eval "foo 1,2,3", "foo <% require Enum, as: E %><%= E.join [1, 2, 3], \",\" %>"
end
test "embedded code with do end and multiple expressions" do
assert_eval(
"foo bar baz",
"foo <%= if true do %>bar <% Process.put(:eex_text, 1) %><%= :baz %><% end %>"
)
test "evaluates with end of token" do
assert_eval "foo bar %>", "foo bar %>"
end
assert Process.get(:eex_text) == 1
end
test "embedded code with middle expression" do
assert_eval("foo bar", "foo <%= if true do %>bar<% else %>baz<% end %>")
end
test "embedded code with evaluated middle expression" do
assert_eval("foo baz", "foo <%= if false do %>bar<% else %>baz<% end %>")
end
test "embedded code with nested do end" do
assert_eval("foo bar", "foo <%= if true do %><%= if true do %>bar<% end %><% end %>")
end
test "embedded code with nested do end with middle expression" do
assert_eval(
"foo baz",
"foo <%= if true do %><%= if false do %>bar<% else %>baz<% end %><% end %>"
)
end
test "embedded code with end followed by bracket" do
assert_eval(
" 101 102 103 ",
"<%= Enum.map([1, 2, 3], fn x -> %> <%= 100 + x %> <% end) %>"
)
assert_eval(
" 101 102 103 ",
"<%= apply Enum, :map, [[1, 2, 3], fn x -> %> <%= 100 + x %> <% end] %>"
)
assert_eval(
" 101 102 103 ",
"<%= #{__MODULE__}.tuple_map {[1, 2, 3], fn x -> %> <%= 100 + x %> <% end} %>"
)
assert_eval(
" 101 102 103 ",
"<%= apply(Enum, :map, [[1, 2, 3], fn x -> %> <%= 100 + x %> <% end]) %>"
)
assert_eval(
" 101 102 103 ",
"<%= Enum.map([1, 2, 3], (fn x -> %> <%= 100 + x %> <% end) ) %>"
)
end
test "embedded code with variable definition" do
assert_eval("foo 1", "foo <% bar = 1 %><%= bar %>")
end
test "embedded code with require" do
assert_eval("foo 1,2,3", "foo <% require Enum, as: E %><%= E.join [1, 2, 3], \",\" %>")
end
test "with end of token" do
assert_eval("foo bar %>", "foo bar %>")
test "raises a syntax error when the token is invalid" do
assert_raise EEx.SyntaxError, "nofile:1: missing token '%>'", fn ->
EEx.compile_string "foo <%= bar"
end
end
describe "raises syntax errors" do
test "when the token is invalid" do
assert_raise EEx.SyntaxError, "nofile:1: missing token '%>'", fn ->
EEx.compile_string("foo <%= bar")
end
end
test "when middle expression is found without a start expression" do
assert_raise EEx.SyntaxError, "nofile:1: unexpected middle of expression <% else %>", fn ->
EEx.compile_string("<% if true %> foo<% else %>bar<% end %>")
end
end
test "when end expression is found without a start expression" do
assert_raise EEx.SyntaxError, "nofile:1: unexpected end of expression <% end %>", fn ->
EEx.compile_string("foo <% end %>")
end
end
test "when start expression is found without an end expression" do
msg = "nofile:2: unexpected end of string, expected a closing '<% end %>'"
assert_raise EEx.SyntaxError, msg, fn ->
EEx.compile_string("foo\n<% if true do %>")
end
end
test "when nested end expression is found without a start expression" do
assert_raise EEx.SyntaxError, "nofile:1: unexpected end of expression <% end %>", fn ->
EEx.compile_string("foo <% if true do %><% end %><% end %>")
end
end
test "when middle expression has a modifier" do
assert ExUnit.CaptureIO.capture_io(:stderr, fn ->
EEx.compile_string("foo <%= if true do %>true<%= else %>false<% end %>")
end) =~ ~s[unexpected beginning of EEx tag \"<%=\" on \"<%= else %>\"]
end
test "when end expression has a modifier" do
assert ExUnit.CaptureIO.capture_io(:stderr, fn ->
EEx.compile_string("foo <%= if true do %>true<% else %>false<%= end %>")
end) =~
~s[unexpected beginning of EEx tag \"<%=\" on end of expression \"<%= end %>\"]
end
test "when trying to use marker '/' without implementation" do
msg =
~r/unsupported EEx syntax <%\/ %> \(the syntax is valid but not supported by the current EEx engine\)/
assert_raise EEx.SyntaxError, msg, fn ->
EEx.compile_string("<%/ true %>")
end
end
test "when trying to use marker '|' without implementation" do
msg =
~r/unsupported EEx syntax <%| %> \(the syntax is valid but not supported by the current EEx engine\)/
assert_raise EEx.SyntaxError, msg, fn ->
EEx.compile_string("<%| true %>")
end
test "raises a syntax error when end expression is found without a start expression" do
assert_raise EEx.SyntaxError, "nofile:1: unexpected token ' end '", fn ->
EEx.compile_string "foo <% end %>"
end
end
describe "error messages" do
test "honor line numbers" do
assert_raise EEx.SyntaxError, "nofile:99: missing token '%>'", fn ->
EEx.compile_string("foo <%= bar", line: 99)
end
end
test "honor file names" do
assert_raise EEx.SyntaxError, "my_file.eex:1: missing token '%>'", fn ->
EEx.compile_string("foo <%= bar", file: "my_file.eex")
end
test "raises a syntax error when start expression is found without an end expression" do
assert_raise EEx.SyntaxError, "nofile:2: unexpected end of string, expected a closing '<% end %>'", fn ->
EEx.compile_string "foo\n<% if true do %>"
end
end
describe "environment" do
test "respects line numbers" do
expected = """
foo
2
"""
string = """
foo
<%= __ENV__.line %>
"""
assert_eval(expected, string)
end
test "respects line numbers inside nested expressions" do
expected = """
foo
3
5
"""
string = """
foo
<%= if true do %>
<%= __ENV__.line %>
<% end %>
<%= __ENV__.line %>
"""
assert_eval(expected, string)
end
test "respects line numbers inside start expression" do
expected = """
foo
true
5
"""
string = """
foo
<%= if __ENV__.line == 2 do %>
<%= true %>
<% end %>
<%= __ENV__.line %>
"""
assert_eval(expected, string)
end
test "respects line numbers inside middle expression with ->" do
expected = """
foo
true
7
"""
string = """
foo
<%= cond do %>
<% false -> %> false
<% __ENV__.line == 4 -> %>
<%= true %>
<% end %>
<%= __ENV__.line %>
"""
assert_eval(expected, string)
end
test "respects line number inside middle expressions with keywords" do
expected = """
foo
5
7
"""
string = """
foo
<%= if false do %>
<%= __ENV__.line %>
<% else %>
<%= __ENV__.line %>
<% end %>
<%= __ENV__.line %>
"""
assert_eval(expected, string)
end
test "respects files" do
assert_eval("sample.ex", "<%= __ENV__.file %>", [], file: "sample.ex")
test "raises a syntax error when nested end expression is found without a start expression" do
assert_raise EEx.SyntaxError, "nofile:1: unexpected token ' end '", fn ->
EEx.compile_string "foo <% if true do %><% end %><% end %>"
end
end
describe "clauses" do
test "inside functions" do
expected = """
test "respects line numbers" do
expected = """
foo
2
"""
Number 1
string = """
foo
<%= __ENV__.line %>
"""
Number 2
assert_eval expected, string
end
Number 3
test "respects line numbers inside nested expressions" do
expected = """
foo
"""
3
string = """
<%= Enum.map [1, 2, 3], fn x -> %>
Number <%= x %>
<% end %>
"""
5
"""
assert_eval(expected, string)
end
string = """
foo
<%= if true do %>
<%= __ENV__.line %>
<% end %>
<%= __ENV__.line %>
"""
test "inside multiple functions" do
expected = """
assert_eval expected, string
end
A 1
test "respects line numbers inside start expression" do
expected = """
foo
B 2
true
A 3
5
"""
"""
string = """
foo
<%= if __ENV__.line == 2 do %>
<%= true %>
<% end %>
<%= __ENV__.line %>
"""
string = """
<%= #{__MODULE__}.switching_map [1, 2, 3], fn x -> %>
A <%= x %>
<% end, fn x -> %>
B <%= x %>
<% end %>
"""
assert_eval expected, string
end
assert_eval(expected, string)
end
test "respects line numbers inside middle expression with ->" do
expected = """
foo
test "inside callback and do block" do
expected = """
true
7
"""
A 1
string = """
foo
<%= cond do %>
<% false -> %> false
<% __ENV__.line == 4 -> %>
<%= true %>
<% end %>
<%= __ENV__.line %>
"""
B 2
assert_eval expected, string
end
A 3
test "respects line number inside middle expressions with keywords" do
expected = """
foo
"""
5
string = """
<% require #{__MODULE__} %>
<%= #{__MODULE__}.switching_macro [1, 2, 3], fn x -> %>
A <%= x %>
<% end do %>
B <%= x %>
<% end %>
"""
7
"""
assert_eval(expected, string)
end
string = """
foo
<%= if false do %>
<%= __ENV__.line %>
<% else %>
<%= __ENV__.line %>
<% end %>
<%= __ENV__.line %>
"""
test "inside cond" do
expected = """
foo
assert_eval expected, string
end
true
test "respects files" do
assert_eval "sample.ex", "<%= __ENV__.file %>", [], file: "sample.ex"
end
"""
test "properly handle functions" do
expected = """
string = """
foo
<%= cond do %>
<% false -> %> false
<% fn -> 1 end -> %>
<%= true %>
<% end %>
"""
Number 1
assert_eval(expected, string)
end
Number 2
test "inside cond with do end" do
string = """
<% y = ["a", "b", "c"] %>
<%= cond do %>
<% "a" in y -> %>
Good
<% true -> %>
<% if true do %>true<% else %>false<% end %>
Bad
<% end %>
"""
Number 3
assert_eval("\n\n Good\n \n", string)
"""
string = """
<%= Enum.map [1, 2, 3], fn x -> %>
Number <%= x %>
<% end %>
"""
assert_eval expected, string
end
test "properly handle functions on the left side of clauses" do
expected = """
foo
true
"""
string = """
foo
<%= cond do %>
<% false -> %> false
<% fn -> 1 end -> %>
<%= true %>
<% end %>
"""
assert_eval expected, string
end
test "evaluates nested do expressions" do
string = """
<% y = ["a", "b", "c"] %>
<%= cond do %>
<% "a" in y -> %>
Good
<% true -> %>
<% if true do %>true<% else %>false<% end %>
Bad
<% end %>
"""
assert_eval "\n\n Good\n \n", string
end
test "evaluates expressions with buffers" do
string = """
<%= 123 %>
<% if true do %>
<%= 456 %>
<% end %>
<%= 789 %>
"""
assert_eval "123\n\n789\n", string
end
test "for comprehensions" do
string = """
<%= for _name <- packages || [] do %>
<% end %>
<%= all || :done %>
"""
assert_eval "\ndone\n", string, packages: nil, all: nil
end
test "unicode" do
template = """
• <%= "•" %> •
<%= "Jößé Vâlìm" %> Jößé Vâlìm
"""
result = EEx.eval_string(template)
assert result == " • • •\n Jößé Vâlìm Jößé Vâlìm\n"
end
test "trim mode" do
string = "<%= 123 %> \n456\n <%= 789 %>"
expected = "123456\n789"
assert_eval expected, string, [], trim: true
end
test "evaluates the source from a given file" do
filename = Path.join(__DIR__, "fixtures/eex_template.eex")
result = EEx.eval_file(filename)
assert result == "foo bar.\n"
end
test "evaluates the source from a given file with bindings" do
filename = Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")
result = EEx.eval_file(filename, [bar: 1])
assert result == "foo 1\n"
end
test "raises an Exception when there's an error with the given file" do
assert_raise File.Error, "could not read file non-existent.eex: no such file or directory", fn ->
filename = "non-existent.eex"
EEx.compile_file(filename)
end
end
describe "buffers" do
test "unused buffers are kept out" do
string = """
<%= 123 %>
<% if true do %>
<%= 456 %>
<% end %>
<%= 789 %>
"""
assert_eval("123\n\n789\n", string)
end
test "inside comprehensions" do
string = """
<%= for _name <- packages || [] do %>
<% end %>
<%= all || :done %>
"""
assert_eval("\ndone\n", string, packages: nil, all: nil)
end
test "sets external resource attribute" do
assert EExTest.Compiled.__info__(:attributes)[:external_resource] ==
[Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")]
end
describe "from file" do
test "evaluates the source" do
filename = Path.join(__DIR__, "fixtures/eex_template.eex")
result = EEx.eval_file(filename)
assert_normalized_newline_equal("foo bar.\n", result)
end
test "evaluates the source with bindings" do
filename = Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")
result = EEx.eval_file(filename, bar: 1)
assert_normalized_newline_equal("foo 1\n", result)
end
test "raises an Exception when file is missing" do
msg = "could not read file \"non-existent.eex\": no such file or directory"
assert_raise File.Error, msg, fn ->
filename = "non-existent.eex"
EEx.compile_file(filename)
end
end
test "sets external resource attribute" do
assert EExTest.Compiled.__info__(:attributes)[:external_resource] ==
[Path.join(__DIR__, "fixtures/eex_template_with_bindings.eex")]
end
test "defined from string" do
assert EExTest.Compiled.string_sample(1, 2) == "3"
end
describe "precompiled" do
test "from string" do
assert EExTest.Compiled.string_sample(1, 2) == "3"
end
test "defined from file" do
assert EExTest.Compiled.file_sample(1) == "foo 1\n"
assert EExTest.Compiled.public_file_sample(1) == "foo 1\n"
end
test "from file" do
assert_normalized_newline_equal("foo 1\n", EExTest.Compiled.file_sample(1))
assert_normalized_newline_equal("foo 1\n", EExTest.Compiled.public_file_sample(1))
end
test "defined from file do not affect backtrace" do
assert EExTest.Compiled.before_compile ==
{8,
{EExTest.Compiled,
:before_compile,
0,
[file: to_char_list(Path.relative_to_cwd(__ENV__.file)), line: 7]
}
}
test "from file does not affect backtrace" do
file = to_charlist(Path.relative_to_cwd(__ENV__.file))
assert EExTest.Compiled.after_compile ==
{23,
{EExTest.Compiled,
:after_compile,
0,
[file: to_char_list(Path.relative_to_cwd(__ENV__.file)), line: 22]
}
}
assert EExTest.Compiled.before_compile() ==
{7, {EExTest.Compiled, :before_compile, 0, [file: file, line: 7]}}
assert EExTest.Compiled.after_compile() ==
{21, {EExTest.Compiled, :after_compile, 0, [file: file, line: 21]}}
assert EExTest.Compiled.unknown() ==
{26, {EExTest.Compiled, :unknown, 0, [file: 'unknown', line: 26]}}
end
assert EExTest.Compiled.unknown ==
{29,
{EExTest.Compiled,
:unknown,
0,
[file: 'unknown', line: 28]
}
}
end
defmodule TestEngine do
@behaviour EEx.Engine
def init(_opts) do
"INIT"
end
def handle_body(body) do
"BODY(#{body})"
end
def handle_begin(_) do
"BEGIN"
end
def handle_end(buffer) do
buffer <> ":END"
{:wrapped, body}
end
def handle_text(buffer, text) do
buffer <> ":TEXT(#{String.trim(text)})"
end
def handle_expr(buffer, "/", expr) do
buffer <> ":DIV(#{Macro.to_string(expr)})"
end
def handle_expr(buffer, "=", expr) do
buffer <> ":EQUAL(#{Macro.to_string(expr)})"
EEx.Engine.handle_text(buffer, text)
end
def handle_expr(buffer, mark, expr) do
@@ -588,64 +409,13 @@ defmodule EExTest do
end
end
describe "custom engines" do
test "text" do
assert_eval("BODY(INIT:TEXT(foo))", "foo", [], engine: TestEngine)
end
test "custom marker" do
assert_eval("BODY(INIT:TEXT(foo):DIV(:bar))", "foo <%/ :bar %>", [], engine: TestEngine)
end
test "begin/end" do
assert_eval(
~s[BODY(INIT:TEXT(foo):EQUAL(if do\n "BEGIN:TEXT(this):END"\nelse\n "BEGIN:TEXT(that):END"\nend))],
"foo <%= if do %>this<% else %>that<% end %>",
[],
engine: TestEngine
)
end
test "not implemented custom marker" do
msg =
~r/unsupported EEx syntax <%| %> \(the syntax is valid but not supported by the current EEx engine\)/
assert_raise EEx.SyntaxError, msg, fn ->
assert_eval({:wrapped, "foo baz"}, "foo <%| :bar %>", [], engine: TestEngine)
end
end
test "calls handle_body" do
assert {:wrapped, "foo"} = EEx.eval_string("foo", [], engine: TestEngine)
end
defp assert_eval(expected, actual, binding \\ [], opts \\ []) do
opts = Keyword.merge([file: __ENV__.file, engine: opts[:engine] || EEx.Engine], opts)
opts = Enum.into [file: __ENV__.file, engine: EEx.Engine], opts
result = EEx.eval_string(actual, binding, opts)
assert result == expected
end
defp assert_normalized_newline_equal(expected, actual) do
assert String.replace(expected, "\r\n", "\n") == String.replace(actual, "\r\n", "\n")
end
def tuple_map({list, callback}) do
Enum.map(list, callback)
end
def switching_map(list, a, b) do
list
|> Enum.with_index()
|> Enum.map(fn
{element, index} when rem(index, 2) == 0 -> a.(element)
{element, index} when rem(index, 2) == 1 -> b.(element)
end)
end
defmacro switching_macro(list, a, do: block) do
quote do
b = fn var!(x) ->
unquote(block)
end
unquote(__MODULE__).switching_map(unquote(list), unquote(a), b)
end
end
end
+1 -1
View File
@@ -1 +1 @@
ExUnit.start(trace: "--trace" in System.argv())
ExUnit.start [trace: "--trace" in System.argv]
-17
View File
@@ -1,17 +0,0 @@
{'src/*', [
warn_unused_vars,
warn_export_all,
warn_shadow_vars,
warn_unused_import,
warn_unused_function,
warn_bif_clash,
warn_unused_record,
warn_deprecated_function,
warn_obsolete_guard,
warn_exported_vars,
%% warn_missing_spec,
%% warn_untyped_record,
warnings_as_errors,
debug_info,
{outdir, "ebin/"}
]}.
-103
View File
@@ -1,103 +0,0 @@
# Returns config for Elixir docs
[
extras: Path.wildcard("lib/elixir/pages/*.md"),
groups_for_functions: [
Guards: & &1[:guard] == true
],
skip_undefined_reference_warnings_on: ["compatibility-and-deprecations"],
groups_for_modules: [
# [Kernel, Kernel.SpecialForms],
"Basic Types": [
Atom,
Base,
Bitwise,
Date,
DateTime,
Exception,
Float,
Function,
Integer,
Module,
NaiveDateTime,
Record,
Regex,
String,
Time,
Tuple,
URI,
Version,
Version.Requirement
],
"Collections & Enumerables": [
Access,
Date.Range,
Enum,
Keyword,
List,
Map,
MapSet,
Range,
Stream
],
"IO & System": [
File,
File.Stat,
File.Stream,
IO,
IO.ANSI,
IO.Stream,
OptionParser,
Path,
Port,
StringIO,
System
],
"Calendar": [
Calendar,
Calendar.ISO,
Calendar.TimeZoneDatabase,
Calendar.UTCOnlyTimeZoneDatabase
],
"Processes & Applications": [
Agent,
Application,
Config,
Config.Provider,
Config.Reader,
DynamicSupervisor,
GenServer,
Node,
Process,
Registry,
Supervisor,
Task,
Task.Supervisor
],
Protocols: [
Collectable,
Enumerable,
Inspect,
Inspect.Algebra,
Inspect.Opts,
List.Chars,
Protocol,
String.Chars
],
"Code & Macros": [
Code,
Kernel.ParallelCompiler,
Macro,
Macro.Env
],
Deprecated: [
Behaviour,
Dict,
GenEvent,
HashDict,
HashSet,
Set,
Supervisor.Spec
]
]
]
-13
View File
@@ -1,13 +0,0 @@
#!/usr/bin/env escript
%% -*- erlang -*-
main([Source, Target, Version]) ->
{ok, [{application, Name, Props0}]} = file:consult(Source),
Ebin = filename:dirname(Target),
Files = filelib:wildcard(filename:join(Ebin, "*.beam")),
Mods = [list_to_atom(filename:basename(F, ".beam")) || F <- Files],
Props1 = lists:keyreplace(modules, 1, Props0, {modules, Mods}),
Props = lists:keyreplace(vsn, 1, Props1, {vsn, Version}),
AppDef = io_lib:format("~tp.~n", [{application, Name, Props}]),
ok = file:write_file(Target, AppDef),
io:format("Generated ~ts.app~n", [Name]).
+99 -677
View File
@@ -1,19 +1,20 @@
defmodule Access do
@moduledoc """
Key-based access to data structures.
Key-based access to data structures via the `foo[bar]` syntax.
The `Access` module defines a behaviour for dynamically accessing
keys of any type in a data structure via the `data[key]` syntax.
Elixir provides two syntaxes for accessing values. `user[:name]`
is used by dynamic structures, like maps and keywords, while
`user.name` is used by structs. The main difference is that
`user[:name]` won't raise if the key `:name` is missing but
`user.name` will raise if there is no `:name` key.
`Access` supports keyword lists (`Keyword`) and maps (`Map`) out
of the box. The key can be of any type and it returns `nil` if
the key does not exist:
## Key-based lookups
Out of the box, Access works with `Keyword` and `Map`:
iex> keywords = [a: 1, b: 2]
iex> keywords[:a]
1
iex> keywords[:c]
nil
iex> map = %{a: 1, b: 2}
iex> map[:a]
@@ -23,213 +24,117 @@ defmodule Access do
iex> star_ratings[1.5]
"★☆"
Access can be combined with `Kernel.put_in/3` to put a value
in a given key:
iex> map = %{a: 1, b: 2}
iex> put_in map[:a], 3
%{a: 3, b: 2}
This syntax is very convenient as it can be nested arbitrarily:
iex> users = %{"john" => %{age: 27}, "meg" => %{age: 23}}
iex> put_in users["john"][:age], 28
%{"john" => %{age: 28}, "meg" => %{age: 23}}
Furthermore, Access transparently ignores `nil` values:
iex> keywords = [a: 1, b: 2]
iex> keywords[:c][:unknown]
nil
This works because accessing anything on a `nil` value, returns
`nil` itself:
Since Access is a behaviour, it can be implemented to key-value
data structures. Access requires the key comparison to be
implemented using the `===` operator.
iex> nil[:a]
nil
## Field-based lookups
The access syntax can also be used with the `Kernel.put_in/2`,
`Kernel.update_in/2` and `Kernel.get_and_update_in/2` macros
to allow values to be set in nested data structures:
The Access syntax (`foo[bar]`) cannot be used to access fields in
structs. That's by design, as Access is meant to be used for
dynamic key-value structures, like maps and keywords, and not
by static ones like structs.
iex> users = %{"john" => %{age: 27}, "meg" => %{age: 23}}
iex> put_in(users["john"][:age], 28)
%{"john" => %{age: 28}, "meg" => %{age: 23}}
However Elixir already provides a field-based lookup for structs.
Imagine a struct named `User` with name and age fields. The
following would raise:
> Attention! While the access syntax is allowed in maps via
> `map[key]`, if your map is made of predefined atom keys,
> you should prefer to access those atom keys with `map.key`
> instead of `map[key]`, as `map.key` will raise if the key
> is missing. This is important because, if a map has a predefined
> set of keys and a key is missing, it is most likely a bug
> in your software or a typo on the key name. For this reason,
> because structs are predefined in nature, they only allow
> the `struct.key` syntax and they do not allow the `struct[key]`
> access syntax. See the `Map` module for more information.
user = %User{name: "john"}
user[:name]
** (UndefinedFunctionError) undefined function User.fetch/2
(User does not implement the Access behaviour)
## Nested data structures
Structs instead use the `user.name` syntax:
Both key-based access syntaxes can be used with the nested update
functions and macros in `Kernel`, such as `Kernel.get_in/2`,
`Kernel.put_in/3`, `Kernel.update_in/3`, `Kernel.pop_in/2`, and
`Kernel.get_and_update_in/3`.
user.name
#=> "john"
For example, to update a map inside another map:
The same `user.name` syntax can also be used by `Kernel.put_in/2`
to for updating structs fields:
iex> users = %{"john" => %{age: 27}, "meg" => %{age: 23}}
iex> put_in(users["john"].age, 28)
%{"john" => %{age: 28}, "meg" => %{age: 23}}
put_in user.name, "mary"
%User{name: "mary"}
This module provides convenience functions for traversing other
structures, like tuples and lists. These functions can be used
in all the `Access`-related functions and macros in `Kernel`.
Differently from `user[:name]`, `user.name` cannot be extended by
the developers, and will be always restricted to only maps and
structs.
For instance, given a user map with the `:name` and `:languages`
keys, here is how to deeply traverse the map and convert all
language names to uppercase:
Summing up:
iex> languages = [
...> %{name: "elixir", type: :functional},
...> %{name: "c", type: :procedural}
...> ]
iex> user = %{name: "john", languages: languages}
iex> update_in(user, [:languages, Access.all(), :name], &String.upcase/1)
%{
name: "john",
languages: [
%{name: "ELIXIR", type: :functional},
%{name: "C", type: :procedural}
]
}
* `user[:name]` is used by dynamic structures, is extensible and
does not raise on missing keys
* `user.name` is used by static structures, it is not extensible
and it will raise on missing keys
See the functions `key/1`, `key!/1`, `elem/1`, and `all/0` for
some of the available accessors.
"""
@type container :: keyword | struct | map
@type nil_container :: nil
@type any_container :: any
@type t :: container | nil_container | any_container
@type t :: list | map | nil
@type key :: any
@type value :: any
@type get_fun(data, get_value) ::
(:get, data, (term -> term) ->
{get_value, new_data :: container})
@callback fetch(t, key) :: {:ok, value} | :error
@callback get_and_update(t, key, (value -> {value, value})) :: {value, t}
@type get_and_update_fun(data, get_value) ::
(:get_and_update, data, (term -> term) ->
{get_value, new_data :: container} | :pop)
@type access_fun(data, get_value) ::
get_fun(data, get_value) | get_and_update_fun(data, get_value)
@doc """
Invoked in order to access the value stored under `key` in the given term `term`.
This function should return `{:ok, value}` where `value` is the value under
`key` if the key exists in the term, or `:error` if the key does not exist in
the term.
Many of the functions defined in the `Access` module internally call this
function. This function is also used when the square-brackets access syntax
(`structure[key]`) is used: the `fetch/2` callback implemented by the module
that defines the `structure` struct is invoked and if it returns `{:ok,
value}` then `value` is returned, or if it returns `:error` then `nil` is
returned.
See the `Map.fetch/2` and `Keyword.fetch/2` implementations for examples of
how to implement this callback.
"""
@callback fetch(term :: t, key) :: {:ok, value} | :error
@doc """
Invoked in order to access the value under `key` and update it at the same time.
The implementation of this callback should invoke `fun` with the value under
`key` in the passed structure `data`, or with `nil` if `key` is not present in it.
This function must return either `{get_value, update_value}` or `:pop`.
If the passed function returns `{get_value, update_value}`,
the return value of this callback should be `{get_value, new_data}`, where:
* `get_value` is the retrieved value (which can be operated on before being returned)
* `update_value` is the new value to be stored under `key`
* `new_data` is `data` after updating the value of `key` with `update_value`.
If the passed function returns `:pop`, the return value of this callback
must be `{value, new_data}` where `value` is the value under `key`
(or `nil` if not present) and `new_data` is `data` without `key`.
See the implementations of `Map.get_and_update/3` or `Keyword.get_and_update/3`
for more examples.
"""
@callback get_and_update(data, key, (value -> {get_value, value} | :pop)) :: {get_value, data}
when get_value: var, data: container | any_container
@doc """
Invoked to "pop" the value under `key` out of the given data structure.
When `key` exists in the given structure `data`, the implementation should
return a `{value, new_data}` tuple where `value` is the value that was under
`key` and `new_data` is `term` without `key`.
When `key` is not present in the given structure, a tuple `{value, data}`
should be returned, where `value` is implementation-defined.
See the implementations for `Map.pop/3` or `Keyword.pop/3` for more examples.
"""
@callback pop(data, key) :: {value, data} when data: container | any_container
defmacrop raise_undefined_behaviour(exception, module, top) do
defmacrop raise_undefined_behaviour(e, struct, top) do
quote do
exception =
case __STACKTRACE__ do
[unquote(top) | _] ->
reason = "#{inspect(unquote(module))} does not implement the Access behaviour"
%{unquote(exception) | reason: reason}
stacktrace = System.stacktrace
e =
case stacktrace do
[unquote(top)|_] ->
%{unquote(e) | reason: "#{inspect unquote(struct)} does not implement the Access behaviour"}
_ ->
unquote(exception)
unquote(e)
end
reraise exception, __STACKTRACE__
reraise e, stacktrace
end
end
@doc """
Fetches the value for the given key in a container (a map, keyword
list, or struct that implements the `Access` behaviour).
Returns `{:ok, value}` where `value` is the value under `key` if there is such
a key, or `:error` if `key` is not found.
## Examples
iex> Access.fetch(%{name: "meg", age: 26}, :name)
{:ok, "meg"}
iex> Access.fetch([ordered: true, on_timeout: :exit], :timeout)
:error
Fetches the container's value for the given key.
"""
@spec fetch(container, term) :: {:ok, term} | :error
@spec fetch(nil_container, any) :: :error
@spec fetch(t, term) :: {:ok, term} | :error
def fetch(container, key)
def fetch(%module{} = container, key) do
module.fetch(container, key)
def fetch(%{__struct__: struct} = container, key) do
struct.fetch(container, key)
rescue
exception in UndefinedFunctionError ->
raise_undefined_behaviour(exception, module, {^module, :fetch, [^container, ^key], _})
e in UndefinedFunctionError ->
raise_undefined_behaviour e, struct, {^struct, :fetch, [^container, ^key], _}
end
def fetch(map, key) when is_map(map) do
case map do
%{^key => value} -> {:ok, value}
_ -> :error
end
def fetch(%{} = map, key) do
:maps.find(key, map)
end
def fetch(list, key) when is_list(list) and is_atom(key) do
case :lists.keyfind(key, 1, list) do
{_, value} -> {:ok, value}
{^key, value} -> {:ok, value}
false -> :error
end
end
def fetch(list, key) when is_list(list) do
raise ArgumentError,
"the Access calls for keywords expect the key to be an atom, got: " <> inspect(key)
"the Access calls for keywords expect the key to be an atom, got: " <> inspect(key)
end
def fetch(nil, _key) do
@@ -237,97 +142,45 @@ defmodule Access do
end
@doc """
Gets the value for the given key in a container (a map, keyword
list, or struct that implements the `Access` behaviour).
Returns the value under `key` if there is such a key, or `default` if `key` is
not found.
## Examples
iex> Access.get(%{name: "john"}, :name, "default name")
"john"
iex> Access.get(%{name: "john"}, :age, 25)
25
iex> Access.get([ordered: true], :timeout)
nil
Gets the container's value for the given key.
"""
@spec get(container, term, term) :: term
@spec get(nil_container, any, default) :: default when default: var
def get(container, key, default \\ nil)
# Reimplementing the same logic as Access.fetch/2 here is done for performance, since
# this is called a lot and calling fetch/2 means introducing some overhead (like
# building the "{:ok, _}" tuple and deconstructing it back right away).
def get(%module{} = container, key, default) do
try do
module.fetch(container, key)
rescue
exception in UndefinedFunctionError ->
raise_undefined_behaviour(exception, module, {^module, :fetch, [^container, ^key], _})
else
@spec get(t, term, term) :: term
def get(container, key, default \\ nil) do
case fetch(container, key) do
{:ok, value} -> value
:error -> default
end
end
def get(map, key, default) when is_map(map) do
case map do
%{^key => value} -> value
_ -> default
end
end
def get(list, key, default) when is_list(list) and is_atom(key) do
case :lists.keyfind(key, 1, list) do
{_, value} -> value
false -> default
end
end
def get(list, key, _default) when is_list(list) do
raise ArgumentError,
"the Access calls for keywords expect the key to be an atom, got: " <> inspect(key)
end
def get(nil, _key, default) do
default
end
@doc """
Gets and updates the given key in a `container` (a map, a keyword list,
a struct that implements the `Access` behaviour).
Gets and updates the container's value for the given key, in a single pass.
The `fun` argument receives the value of `key` (or `nil` if `key` is not
present in `container`) and must return a two-element tuple `{get_value, update_value}`:
the "get" value `get_value` (the retrieved value, which can be operated on before
being returned) and the new value to be stored under `key` (`update_value`).
`fun` may also return `:pop`, which means the current value
should be removed from the container and returned.
The argument function `fun` must receive the value for the given `key` (or
`nil` if the key doesn't exist in `container`). It must return a tuple
containing the `get` value and the new value to be stored in the `container`.
The returned value is a two-element tuple with the "get" value returned by
`fun` and a new container with the updated value under `key`.
This function returns a two-element tuple.
The first element is the `get` value, as returned by `fun`.
The second element is the container, updated with the value returned by `fun`.
"""
@spec get_and_update(data, key, (value -> {get_value, value} | :pop)) :: {get_value, data}
when get_value: var, data: container
@spec get_and_update(t, term, (term -> {get, term})) :: {get, t} when get: var
def get_and_update(container, key, fun)
def get_and_update(%module{} = container, key, fun) do
module.get_and_update(container, key, fun)
def get_and_update(%{__struct__: struct} = container, key, fun) do
struct.get_and_update(container, key, fun)
rescue
exception in UndefinedFunctionError ->
raise_undefined_behaviour(
exception,
module,
{^module, :get_and_update, [^container, ^key, ^fun], _}
)
e in UndefinedFunctionError ->
raise_undefined_behaviour e, struct, {^struct, :get_and_update, [^container, ^key, ^fun], _}
end
def get_and_update(map, key, fun) when is_map(map) do
Map.get_and_update(map, key, fun)
def get_and_update(%{} = map, key, fun) do
current_value = case :maps.find(key, map) do
{:ok, value} -> value
:error -> nil
end
{get, update} = fun.(current_value)
{get, :maps.put(key, update, map)}
end
def get_and_update(list, key, fun) when is_list(list) do
@@ -335,438 +188,7 @@ defmodule Access do
end
def get_and_update(nil, key, _fun) do
raise ArgumentError, "could not put/update key #{inspect(key)} on a nil value"
end
@doc """
Removes the entry with a given key from a container (a map, keyword
list, or struct that implements the `Access` behaviour).
Returns a tuple containing the value associated with the key and the
updated container. `nil` is returned for the value if the key isn't
in the container.
## Examples
With a map:
iex> Access.pop(%{name: "Elixir", creator: "Valim"}, :name)
{"Elixir", %{creator: "Valim"}}
A keyword list:
iex> Access.pop([name: "Elixir", creator: "Valim"], :name)
{"Elixir", [creator: "Valim"]}
An unknown key:
iex> Access.pop(%{name: "Elixir", creator: "Valim"}, :year)
{nil, %{creator: "Valim", name: "Elixir"}}
"""
@spec pop(data, key) :: {value, data} when data: container
def pop(%module{} = container, key) do
module.pop(container, key)
rescue
exception in UndefinedFunctionError ->
raise_undefined_behaviour(exception, module, {^module, :pop, [^container, ^key], _})
end
def pop(map, key) when is_map(map) do
Map.pop(map, key)
end
def pop(list, key) when is_list(list) do
Keyword.pop(list, key)
end
def pop(nil, key) do
raise ArgumentError, "could not pop key #{inspect(key)} on a nil value"
end
## Accessors
@doc """
Returns a function that accesses the given key in a map/struct.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
The returned function uses the default value if the key does not exist.
This can be used to specify defaults and safely traverse missing keys:
iex> get_in(%{}, [Access.key(:user, %{name: "meg"}), Access.key(:name)])
"meg"
Such is also useful when using update functions, allowing us to introduce
values as we traverse the data structure for updates:
iex> put_in(%{}, [Access.key(:user, %{}), Access.key(:name)], "Mary")
%{user: %{name: "Mary"}}
## Examples
iex> map = %{user: %{name: "john"}}
iex> get_in(map, [Access.key(:unknown, %{}), Access.key(:name, "john")])
"john"
iex> get_and_update_in(map, [Access.key(:user), Access.key(:name)], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{"john", %{user: %{name: "JOHN"}}}
iex> pop_in(map, [Access.key(:user), Access.key(:name)])
{"john", %{user: %{}}}
An error is raised if the accessed structure is not a map or a struct:
iex> get_in(nil, [Access.key(:foo)])
** (BadMapError) expected a map, got: nil
iex> get_in([], [Access.key(:foo)])
** (BadMapError) expected a map, got: []
"""
@spec key(key, term) :: access_fun(data :: struct | map, get_value :: term)
def key(key, default \\ nil) do
fn
:get, data, next ->
next.(Map.get(data, key, default))
:get_and_update, data, next ->
value = Map.get(data, key, default)
case next.(value) do
{get, update} -> {get, Map.put(data, key, update)}
:pop -> {value, Map.delete(data, key)}
end
end
end
@doc """
Returns a function that accesses the given key in a map/struct.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
Similar to `key/2`, but the returned function raises if the key does not exist.
## Examples
iex> map = %{user: %{name: "john"}}
iex> get_in(map, [Access.key!(:user), Access.key!(:name)])
"john"
iex> get_and_update_in(map, [Access.key!(:user), Access.key!(:name)], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{"john", %{user: %{name: "JOHN"}}}
iex> pop_in(map, [Access.key!(:user), Access.key!(:name)])
{"john", %{user: %{}}}
iex> get_in(map, [Access.key!(:user), Access.key!(:unknown)])
** (KeyError) key :unknown not found in: %{name: \"john\"}
An error is raised if the accessed structure is not a map/struct:
iex> get_in([], [Access.key!(:foo)])
** (RuntimeError) Access.key!/1 expected a map/struct, got: []
"""
@spec key!(key) :: access_fun(data :: struct | map, get_value :: term)
def key!(key) do
fn
:get, %{} = data, next ->
next.(Map.fetch!(data, key))
:get_and_update, %{} = data, next ->
value = Map.fetch!(data, key)
case next.(value) do
{get, update} -> {get, Map.put(data, key, update)}
:pop -> {value, Map.delete(data, key)}
end
_op, data, _next ->
raise "Access.key!/1 expected a map/struct, got: #{inspect(data)}"
end
end
@doc ~S"""
Returns a function that accesses the element at the given index in a tuple.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
The returned function raises if `index` is out of bounds.
Note that popping elements out of tuples is not possible and raises an
error.
## Examples
iex> map = %{user: {"john", 27}}
iex> get_in(map, [:user, Access.elem(0)])
"john"
iex> get_and_update_in(map, [:user, Access.elem(0)], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{"john", %{user: {"JOHN", 27}}}
iex> pop_in(map, [:user, Access.elem(0)])
** (RuntimeError) cannot pop data from a tuple
An error is raised if the accessed structure is not a tuple:
iex> get_in(%{}, [Access.elem(0)])
** (RuntimeError) Access.elem/1 expected a tuple, got: %{}
"""
@spec elem(non_neg_integer) :: access_fun(data :: tuple, get_value :: term)
def elem(index) when is_integer(index) and index >= 0 do
pos = index + 1
fn
:get, data, next when is_tuple(data) ->
next.(:erlang.element(pos, data))
:get_and_update, data, next when is_tuple(data) ->
value = :erlang.element(pos, data)
case next.(value) do
{get, update} -> {get, :erlang.setelement(pos, data, update)}
:pop -> raise "cannot pop data from a tuple"
end
_op, data, _next ->
raise "Access.elem/1 expected a tuple, got: #{inspect(data)}"
end
end
@doc ~S"""
Returns a function that accesses all the elements in a list.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
## Examples
iex> list = [%{name: "john"}, %{name: "mary"}]
iex> get_in(list, [Access.all(), :name])
["john", "mary"]
iex> get_and_update_in(list, [Access.all(), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{["john", "mary"], [%{name: "JOHN"}, %{name: "MARY"}]}
iex> pop_in(list, [Access.all(), :name])
{["john", "mary"], [%{}, %{}]}
Here is an example that traverses the list dropping even
numbers and multiplying odd numbers by 2:
iex> require Integer
iex> get_and_update_in([1, 2, 3, 4, 5], [Access.all()], fn num ->
...> if Integer.is_even(num), do: :pop, else: {num, num * 2}
...> end)
{[1, 2, 3, 4, 5], [2, 6, 10]}
An error is raised if the accessed structure is not a list:
iex> get_in(%{}, [Access.all()])
** (RuntimeError) Access.all/0 expected a list, got: %{}
"""
@spec all() :: access_fun(data :: list, get_value :: list)
def all() do
&all/3
end
defp all(:get, data, next) when is_list(data) do
Enum.map(data, next)
end
defp all(:get_and_update, data, next) when is_list(data) do
all(data, next, _gets = [], _updates = [])
end
defp all(_op, data, _next) do
raise "Access.all/0 expected a list, got: #{inspect(data)}"
end
defp all([head | rest], next, gets, updates) do
case next.(head) do
{get, update} -> all(rest, next, [get | gets], [update | updates])
:pop -> all(rest, next, [head | gets], updates)
end
end
defp all([], _next, gets, updates) do
{:lists.reverse(gets), :lists.reverse(updates)}
end
@doc ~S"""
Returns a function that accesses the element at `index` (zero based) of a list.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
## Examples
iex> list = [%{name: "john"}, %{name: "mary"}]
iex> get_in(list, [Access.at(1), :name])
"mary"
iex> get_in(list, [Access.at(-1), :name])
"mary"
iex> get_and_update_in(list, [Access.at(0), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{"john", [%{name: "JOHN"}, %{name: "mary"}]}
iex> get_and_update_in(list, [Access.at(-1), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{"mary", [%{name: "john"}, %{name: "MARY"}]}
`at/1` can also be used to pop elements out of a list or
a key inside of a list:
iex> list = [%{name: "john"}, %{name: "mary"}]
iex> pop_in(list, [Access.at(0)])
{%{name: "john"}, [%{name: "mary"}]}
iex> pop_in(list, [Access.at(0), :name])
{"john", [%{}, %{name: "mary"}]}
When the index is out of bounds, `nil` is returned and the update function is never called:
iex> list = [%{name: "john"}, %{name: "mary"}]
iex> get_in(list, [Access.at(10), :name])
nil
iex> get_and_update_in(list, [Access.at(10), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{nil, [%{name: "john"}, %{name: "mary"}]}
An error is raised if the accessed structure is not a list:
iex> get_in(%{}, [Access.at(1)])
** (RuntimeError) Access.at/1 expected a list, got: %{}
"""
@spec at(integer) :: access_fun(data :: list, get_value :: term)
def at(index) when is_integer(index) do
fn op, data, next -> at(op, data, index, next) end
end
defp at(:get, data, index, next) when is_list(data) do
data |> Enum.at(index) |> next.()
end
defp at(:get_and_update, data, index, next) when is_list(data) do
get_and_update_at(data, index, next, [])
end
defp at(_op, data, _index, _next) do
raise "Access.at/1 expected a list, got: #{inspect(data)}"
end
defp get_and_update_at([head | rest], 0, next, updates) do
case next.(head) do
{get, update} -> {get, :lists.reverse([update | updates], rest)}
:pop -> {head, :lists.reverse(updates, rest)}
end
end
defp get_and_update_at(list, index, next, updates) when index < 0 do
list_length = length(list)
if list_length + index >= 0 do
get_and_update_at(list, list_length + index, next, updates)
else
{nil, list}
end
end
defp get_and_update_at([head | rest], index, next, updates) when index > 0 do
get_and_update_at(rest, index - 1, next, [head | updates])
end
defp get_and_update_at([], _index, _next, updates) do
{nil, :lists.reverse(updates)}
end
@doc ~S"""
Returns a function that accesses all elements of a list that match the provided predicate.
The returned function is typically passed as an accessor to `Kernel.get_in/2`,
`Kernel.get_and_update_in/3`, and friends.
## Examples
iex> list = [%{name: "john", salary: 10}, %{name: "francine", salary: 30}]
iex> get_in(list, [Access.filter(&(&1.salary > 20)), :name])
["francine"]
iex> get_and_update_in(list, [Access.filter(&(&1.salary <= 20)), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{["john"], [%{name: "JOHN", salary: 10}, %{name: "francine", salary: 30}]}
`filter/1` can also be used to pop elements out of a list or
a key inside of a list:
iex> list = [%{name: "john", salary: 10}, %{name: "francine", salary: 30}]
iex> pop_in(list, [Access.filter(&(&1.salary >= 20))])
{[%{name: "francine", salary: 30}], [%{name: "john", salary: 10}]}
iex> pop_in(list, [Access.filter(&(&1.salary >= 20)), :name])
{["francine"], [%{name: "john", salary: 10}, %{salary: 30}]}
When no match is found, an empty list is returned and the update function is never called
iex> list = [%{name: "john", salary: 10}, %{name: "francine", salary: 30}]
iex> get_in(list, [Access.filter(&(&1.salary >= 50)), :name])
[]
iex> get_and_update_in(list, [Access.filter(&(&1.salary >= 50)), :name], fn prev ->
...> {prev, String.upcase(prev)}
...> end)
{[], [%{name: "john", salary: 10}, %{name: "francine", salary: 30}]}
An error is raised if the predicate is not a function or is of the incorrect arity:
iex> get_in([], [Access.filter(5)])
** (FunctionClauseError) no function clause matching in Access.filter/1
An error is raised if the accessed structure is not a list:
iex> get_in(%{}, [Access.filter(fn a -> a == 10 end)])
** (RuntimeError) Access.filter/1 expected a list, got: %{}
"""
@doc since: "1.6.0"
@spec filter((term -> boolean)) :: access_fun(data :: list, get_value :: list)
def filter(func) when is_function(func) do
fn op, data, next -> filter(op, data, func, next) end
end
defp filter(:get, data, func, next) when is_list(data) do
data |> Enum.filter(func) |> Enum.map(next)
end
defp filter(:get_and_update, data, func, next) when is_list(data) do
get_and_update_filter(data, func, next, [], [])
end
defp filter(_op, data, _func, _next) do
raise "Access.filter/1 expected a list, got: #{inspect(data)}"
end
defp get_and_update_filter([head | rest], func, next, updates, gets) do
if func.(head) do
case next.(head) do
{get, update} ->
get_and_update_filter(rest, func, next, [update | updates], [get | gets])
:pop ->
get_and_update_filter(rest, func, next, updates, [head | gets])
end
else
get_and_update_filter(rest, func, next, [head | updates], gets)
end
end
defp get_and_update_filter([], _func, _next, updates, gets) do
{:lists.reverse(gets), :lists.reverse(updates)}
raise ArgumentError,
"could not put/update key #{inspect key} on a nil value"
end
end
+96 -258
View File
@@ -6,55 +6,48 @@ defmodule Agent do
must be accessed from different processes or by the same process
at different points in time.
The `Agent` module provides a basic server implementation that
The Agent module provides a basic server implementation that
allows state to be retrieved and updated via a simple API.
## Examples
For example, the following agent implements a counter:
For example, in the Mix tool that ships with Elixir, we need
to keep a set of all tasks executed by a given project. Since
this set is shared, we can implement it with an Agent:
defmodule Counter do
use Agent
def start_link(initial_value) do
Agent.start_link(fn -> initial_value end, name: __MODULE__)
defmodule Mix.TasksServer do
def start_link do
Agent.start_link(fn -> MapSet.new end, name: __MODULE__)
end
def value do
Agent.get(__MODULE__, & &1)
@doc "Checks if the task has already executed"
def executed?(task, project) do
item = {task, project}
Agent.get(__MODULE__, fn set ->
item in set
end)
end
def increment do
Agent.update(__MODULE__, &(&1 + 1))
@doc "Marks a task as executed"
def put_task(task, project) do
item = {task, project}
Agent.update(__MODULE__, &MapSet.put(&1, item))
end
@doc "Resets the executed tasks and returns the previous list of tasks"
def take_all() do
Agent.get_and_update(__MODULE__, fn set ->
{Enum.into(set, []), MapSet.new}
end)
end
end
Usage would be:
Counter.start_link(0)
#=> {:ok, #PID<0.123.0>}
Counter.value()
#=> 0
Counter.increment()
#=> :ok
Counter.increment()
#=> :ok
Counter.value()
#=> 2
Thanks to the agent server process, the counter can be safely incremented
concurrently.
Agents provide a segregation between the client and server APIs (similar to
`GenServer`s). In particular, the functions passed as arguments to the calls to
`Agent` functions are invoked inside the agent (the server). This distinction
is important because you may want to avoid expensive operations inside the
agent, as they will effectively block the agent until the request is
fulfilled.
Note that agents still provide a segregation between the
client and server APIs, as seen in GenServers. In particular,
all code inside the function passed to the agent is executed
by the agent. This distinction is important because you may
want to avoid expensive operations inside the agent, as it will
effectively block the agent until the request is fulfilled.
Consider these two examples:
@@ -65,79 +58,19 @@ defmodule Agent do
# Compute in the agent/client
def get_something(agent) do
Agent.get(agent, & &1) |> do_something_expensive()
Agent.get(agent, &(&1)) |> do_something_expensive()
end
The first function blocks the agent. The second function copies all the state
to the client and then executes the operation in the client. One aspect to
consider is whether the data is large enough to require processing in the server,
at least initially, or small enough to be sent to the client cheaply. Another
factor is whether the data needs to be processed atomically: getting the
state and calling `do_something_expensive(state)` outside of the agent means
that the agent's state can be updated in the meantime. This is specially
important in case of updates as computing the new state in the client rather
than in the server can lead to race conditions if multiple clients are trying
to update the same state to different values.
The first function blocks the agent. The second function copies
all the state to the client and then executes the operation in the
client. The difference is whether the data is large enough to require
processing in the server, at least initially, or small enough to be
sent to the client cheaply.
## How to supervise
## Name Registration
An `Agent` is most commonly started under a supervision tree.
When we invoke `use Agent`, it automatically defines a `child_spec/1`
function that allows us to start the agent directly under a supervisor.
To start an agent under a supervisor with an initial counter of 0,
one may do:
children = [
{Counter, 0}
]
Supervisor.start_link(children, strategy: :one_for_all)
While one could also simply pass the `Counter` as a child to the supervisor,
such as:
children = [
Counter # Same as {Counter, []}
]
Supervisor.start_link(children, strategy: :one_for_all)
The definition above wouldn't work for this particular example,
as it would attempt to start the counter with an initial value
of an empty list. However, this may be a viable option in your
own agents. A common approach is to use a keyword list, as that
would allow setting the initial value and giving a name to the
counter process, for example:
def start_link(opts) do
{initial_value, opts} = Keyword.pop(opts, :initial_value, 0)
Agent.start_link(fn -> initial_value end, opts)
end
and then you can use `Counter`, `{Counter, name: :my_counter}` or
even `{Counter, initial_value: 0, name: :my_counter}` as a child
specification.
`use Agent` also accepts a list of options which configures the
child specification and therefore how it runs under a supervisor.
The generated `child_spec/1` can be customized with the following options:
* `:id` - the child specification identifier, defaults to the current module
* `:restart` - when the child should be restarted, defaults to `:permanent`
* `:shutdown` - how to shut down the child, either immediately or by giving it time to shut down
For example:
use Agent, restart: :transient, shutdown: 10_000
See the "Child specification" section in the `Supervisor` module for more
detailed information. The `@doc` annotation immediately preceding
`use Agent` will be attached to the generated `child_spec/1` function.
## Name registration
An agent is bound to the same name registration rules as GenServers.
Read more about it in the `GenServer` documentation.
An Agent is bound to the same name registration rules as GenServers.
Read more about it in the `GenServer` docs.
## A word on distributed agents
@@ -162,15 +95,14 @@ defmodule Agent do
## Hot code swapping
An agent can have its code hot swapped live by simply passing a module,
function, and arguments tuple to the update instruction. For example, imagine
function, and args tuple to the update instruction. For example, imagine
you have an agent named `:sample` and you want to convert its inner state
from a keyword list to a map. It can be done with the following
from some dict structure to a map. It can be done with the following
instruction:
{:update, :sample, {:advanced, {Enum, :into, [%{}]}}}
The agent's state will be added to the given list of arguments (`[%{}]`) as
the first argument.
The agent's state will be added to the given list as the first argument.
"""
@typedoc "Return values of `start*` functions"
@@ -185,51 +117,14 @@ defmodule Agent do
@typedoc "The agent state"
@type state :: term
@doc """
Returns a specification to start an agent under a supervisor.
See the "Child specification" section in the `Supervisor` module for more detailed information.
"""
@doc since: "1.5.0"
def child_spec(arg) do
%{
id: Agent,
start: {Agent, :start_link, [arg]}
}
end
@doc false
defmacro __using__(opts) do
quote location: :keep, bind_quoted: [opts: opts] do
if Module.get_attribute(__MODULE__, :doc) == nil do
@doc """
Returns a specification to start this module under a supervisor.
See `Supervisor`.
"""
end
def child_spec(arg) do
default = %{
id: __MODULE__,
start: {__MODULE__, :start_link, [arg]}
}
Supervisor.child_spec(default, unquote(Macro.escape(opts)))
end
defoverridable child_spec: 1
end
end
@doc """
Starts an agent linked to the current process with the given function.
This is often used to start the agent as part of a supervision tree.
Once the agent is spawned, the given function `fun` is invoked in the server
process, and should return the initial agent state. Note that `start_link/2`
does not return until the given function has returned.
Once the agent is spawned, the given function is invoked and its return
value is used as the agent state. Note that `start_link` does not return
until the given function has returned.
## Options
@@ -249,36 +144,26 @@ defmodule Agent do
## Return values
If the server is successfully created and initialized, the function returns
`{:ok, pid}`, where `pid` is the PID of the server. If an agent with the
`{:ok, pid}`, where `pid` is the pid of the server. If an agent with the
specified name already exists, the function returns
`{:error, {:already_started, pid}}` with the PID of that process.
If the given function callback fails, the function returns `{:error, reason}`.
## Examples
iex> {:ok, pid} = Agent.start_link(fn -> 42 end)
iex> Agent.get(pid, fn state -> state end)
42
iex> {:error, {exception, _stacktrace}} = Agent.start(fn -> raise "oops" end)
iex> exception
%RuntimeError{message: "oops"}
`{:error, {:already_started, pid}}` with the pid of that process.
If the given function callback fails with `reason`, the function returns
`{:error, reason}`.
"""
@spec start_link((() -> term), GenServer.options()) :: on_start
@spec start_link((() -> term), GenServer.options) :: on_start
def start_link(fun, options \\ []) when is_function(fun, 0) do
GenServer.start_link(Agent.Server, fun, options)
end
@doc """
Starts an agent linked to the current process.
Starts an agent linked to the current process with the given module
function and arguments.
Same as `start_link/2` but a module, function, and arguments are expected
instead of an anonymous function; `fun` in `module` will be called with the
given arguments `args` to initialize the state.
Same as `start_link/2` but a module, function and args are expected
instead of an anonymous function.
"""
@spec start_link(module, atom, [any], GenServer.options()) :: on_start
@spec start_link(module, atom, [any], GenServer.options) :: on_start
def start_link(module, fun, args, options \\ []) do
GenServer.start_link(Agent.Server, {module, fun, args}, options)
end
@@ -287,48 +172,31 @@ defmodule Agent do
Starts an agent process without links (outside of a supervision tree).
See `start_link/2` for more information.
## Examples
iex> {:ok, pid} = Agent.start(fn -> 42 end)
iex> Agent.get(pid, fn state -> state end)
42
"""
@spec start((() -> term), GenServer.options()) :: on_start
@spec start((() -> term), GenServer.options) :: on_start
def start(fun, options \\ []) when is_function(fun, 0) do
GenServer.start(Agent.Server, fun, options)
end
@doc """
Starts an agent without links with the given module, function, and arguments.
Starts an agent with the given module function and arguments.
See `start_link/4` for more information.
Similar to `start/2` but a module, function and args are expected
instead of an anonymous function.
"""
@spec start(module, atom, [any], GenServer.options()) :: on_start
@spec start(module, atom, [any], GenServer.options) :: on_start
def start(module, fun, args, options \\ []) do
GenServer.start(Agent.Server, {module, fun, args}, options)
end
@doc """
Gets an agent value via the given anonymous function.
Gets an agent value via the given function.
The function `fun` is sent to the `agent` which invokes the function
passing the agent state. The result of the function invocation is
returned from this function.
`timeout` is an integer greater than zero which specifies how many
milliseconds are allowed before the agent executes the function and returns
the result value, or the atom `:infinity` to wait indefinitely. If no result
is received within the specified time, the function call fails and the caller
exits.
## Examples
iex> {:ok, pid} = Agent.start_link(fn -> 42 end)
iex> Agent.get(pid, fn state -> state end)
42
returned.
A timeout can also be specified (it has a default value of 5000).
"""
@spec get(agent, (state -> a), timeout) :: a when a: var
def get(agent, fun, timeout \\ 5000) when is_function(fun, 1) do
@@ -338,9 +206,9 @@ defmodule Agent do
@doc """
Gets an agent value via the given function.
Same as `get/3` but a module, function, and arguments are expected
Same as `get/3` but a module, function and args are expected
instead of an anonymous function. The state is added as first
argument to the given list of arguments.
argument to the given list of args.
"""
@spec get(agent, module, atom, [term], timeout) :: any
def get(agent, module, fun, args, timeout \\ 5000) do
@@ -348,28 +216,14 @@ defmodule Agent do
end
@doc """
Gets and updates the agent state in one operation via the given anonymous
function.
Gets and updates the agent state in one operation.
The function `fun` is sent to the `agent` which invokes the function
passing the agent state. The function must return a tuple with two
elements, the first being the value to return (that is, the "get" value)
and the second one being the new state of the agent.
`timeout` is an integer greater than zero which specifies how many
milliseconds are allowed before the agent executes the function and returns
the result value, or the atom `:infinity` to wait indefinitely. If no result
is received within the specified time, the function call fails and the caller
exits.
## Examples
iex> {:ok, pid} = Agent.start_link(fn -> 42 end)
iex> Agent.get_and_update(pid, fn state -> {state, state + 1} end)
42
iex> Agent.get(pid, fn state -> state end)
43
elements, the first being the value to return (i.e. the `get` value)
and the second one is the new state.
A timeout can also be specified (it has a default value of 5000).
"""
@spec get_and_update(agent, (state -> {a, state}), timeout) :: a when a: var
def get_and_update(agent, fun, timeout \\ 5000) when is_function(fun, 1) do
@@ -377,11 +231,11 @@ defmodule Agent do
end
@doc """
Gets and updates the agent state in one operation via the given function.
Gets and updates the agent state in one operation.
Same as `get_and_update/3` but a module, function, and arguments are expected
Same as `get_and_update/3` but a module, function and args are expected
instead of an anonymous function. The state is added as first
argument to the given list of arguments.
argument to the given list of args.
"""
@spec get_and_update(agent, module, atom, [term], timeout) :: any
def get_and_update(agent, module, fun, args, timeout \\ 5000) do
@@ -389,28 +243,13 @@ defmodule Agent do
end
@doc """
Updates the agent state via the given anonymous function.
Updates the agent state.
The function `fun` is sent to the `agent` which invokes the function
passing the agent state. The return value of `fun` becomes the new
state of the agent.
passing the agent state. The function must return the new state.
A timeout can also be specified (it has a default value of 5000).
This function always returns `:ok`.
`timeout` is an integer greater than zero which specifies how many
milliseconds are allowed before the agent executes the function and returns
the result value, or the atom `:infinity` to wait indefinitely. If no result
is received within the specified time, the function call fails and the caller
exits.
## Examples
iex> {:ok, pid} = Agent.start_link(fn -> 42 end)
iex> Agent.update(pid, fn state -> state + 1 end)
:ok
iex> Agent.get(pid, fn state -> state end)
43
"""
@spec update(agent, (state -> state), timeout) :: :ok
def update(agent, fun, timeout \\ 5000) when is_function(fun, 1) do
@@ -418,11 +257,11 @@ defmodule Agent do
end
@doc """
Updates the agent state via the given function.
Updates the agent state.
Same as `update/3` but a module, function, and arguments are expected
Same as `update/3` but a module, function and args are expected
instead of an anonymous function. The state is added as first
argument to the given list of arguments.
argument to the given list of args.
"""
@spec update(agent, module, atom, [term], timeout) :: :ok
def update(agent, module, fun, args, timeout \\ 5000) do
@@ -430,14 +269,13 @@ defmodule Agent do
end
@doc """
Performs a cast (*fire and forget*) operation on the agent state.
Performs a cast (fire and forget) operation on the agent state.
The function `fun` is sent to the `agent` which invokes the function
passing the agent state. The return value of `fun` becomes the new
state of the agent.
passing the agent state. The function must return the new state.
Note that `cast` returns `:ok` immediately, regardless of whether `agent` (or
the node it should live on) exists.
Note that `cast` returns `:ok` immediately, regardless of whether the
destination node or agent exists.
"""
@spec cast(agent, (state -> state)) :: :ok
def cast(agent, fun) when is_function(fun, 1) do
@@ -445,11 +283,11 @@ defmodule Agent do
end
@doc """
Performs a cast (*fire and forget*) operation on the agent state.
Performs a cast (fire and forget) operation on the agent state.
Same as `cast/2` but a module, function, and arguments are expected
Same as `cast/2` but a module, function and args are expected
instead of an anonymous function. The state is added as first
argument to the given list of arguments.
argument to the given list of args.
"""
@spec cast(agent, module, atom, [term]) :: :ok
def cast(agent, module, fun, args) do
@@ -457,25 +295,25 @@ defmodule Agent do
end
@doc """
Synchronously stops the agent with the given `reason`.
Stops the agent with the given `reason`.
It returns `:ok` if the agent terminates with the given
reason. If the agent terminates with another reason, the call will
It returns `:ok` if the server terminates with the given
reason, if it terminates with another reason, the call will
exit.
This function keeps OTP semantics regarding error reporting.
If the reason is any other than `:normal`, `:shutdown` or
`{:shutdown, _}`, an error report will be logged.
## Examples
iex> {:ok, pid} = Agent.start_link(fn -> 42 end)
iex> Agent.stop(pid)
:ok
"""
@spec stop(agent, reason :: term, timeout) :: :ok
def stop(agent, reason \\ :normal, timeout \\ :infinity) do
GenServer.stop(agent, reason, timeout)
if is_integer(reason) or reason == :infinity do
IO.write :stderr, "warning: Agent.stop(agent, timeout) is deprecated, " <>
"please use Agent.stop(agent, :normal, timeout) instead\n" <>
Exception.format_stacktrace
:gen.stop(agent, :normal, reason)
else
:gen.stop(agent, reason, timeout)
end
end
end
+11 -3
View File
@@ -15,7 +15,7 @@ defmodule Agent.Server do
def handle_call({:get_and_update, fun}, _from, state) do
case run(fun, [state]) do
{reply, state} -> {:reply, reply, state}
other -> {:stop, {:bad_return_value, other}, state}
other -> {:stop, {:bad_return_value, other}, state}
end
end
@@ -23,10 +23,18 @@ defmodule Agent.Server do
{:reply, :ok, run(fun, [state])}
end
def handle_call(msg, from, state) do
super(msg, from, state)
end
def handle_cast({:cast, fun}, state) do
{:noreply, run(fun, [state])}
end
def handle_cast(msg, state) do
super(msg, state)
end
def code_change(_old, state, fun) do
{:ok, run(fun, [state])}
end
@@ -37,8 +45,8 @@ defmodule Agent.Server do
end
defp get_initial_call(fun) when is_function(fun, 0) do
{:module, module} = Function.info(fun, :module)
{:name, name} = Function.info(fun, :name)
{:module, module} = :erlang.fun_info(fun, :module)
{:name, name} = :erlang.fun_info(fun, :name)
{module, name, 0}
end
+121 -471
View File
@@ -2,396 +2,149 @@ defmodule Application do
@moduledoc """
A module for working with applications and defining application callbacks.
Applications are the idiomatic way to package software in Erlang/OTP. To get
the idea, they are similar to the "library" concept common in other
programming languages, but with some additional characteristics.
In Elixir (actually, in Erlang/OTP), an application is a component
implementing some specific functionality, that can be started and stopped
as a unit, and which can be re-used in other systems.
An application is a component implementing some specific functionality, with a
standardized directory structure, configuration, and lifecycle. Applications
are *loaded*, *started*, and *stopped*.
Applications are defined with an application file named `APP.app` where
`APP` is the application name, usually in `underscore_case`. The application
file must reside in the same `ebin` directory as the compiled modules of the
application.
## The application resource file
In Elixir, Mix is responsible for compiling your source code and
generating your application `.app` file. Furthermore, Mix is also
responsible for configuring, starting and stopping your application
and its dependencies. For this reason, this documentation will focus
on the remaining aspects of your application: the application environment
and the application callback module.
Applications are specified in their [*resource
file*](http://erlang.org/doc/man/app.html), which is a file called `APP.app`,
where `APP` is the application name. For example, the application resource
file of the OTP application `ex_unit` is called `ex_unit.app`.
You'll find the resource file of an application in its `ebin` directory, it is
generated automatically by Mix. Some of its keys are taken from the keyword
lists returned by the `project/0` and `application/0` functions defined in
`mix.exs`, and others are generated by Mix itself.
You can learn more about the generation of application resource files in the
documentation of `Mix.Tasks.Compile.App`, available as well by running
You can learn more about Mix generation of `.app` files by typing
`mix help compile.app`.
## The application environment
## Application environment
The key `env` of an application resource file has a list of tuples that map
atoms to terms, and its contents are known as the application *environment*.
Note that this environment is unrelated to the operating system environment.
Once an application is started, OTP provides an application environment
that can be used to configure the application.
By default, the environment of an application is an empty list. In a Mix
project you can set that key in `application/0`:
Assuming you are inside a Mix project, you can edit the `application`
function in the `mix.exs` file to the following:
def application do
[env: [redis_host: "localhost"]]
[env: [hello: :world]]
end
and the generated application resource file is going to have it included.
In the application function, we can define the default environment values
for our application. By starting your application with `iex -S mix`, you
can access the default value:
The environment is available after loading the application, which is a process
explained later:
Application.get_env(:APP_NAME, :hello)
#=> :world
Application.load(:APP_NAME)
#=> :ok
It is also possible to put and delete values from the application value,
including new values that are not defined in the environment file (although
this should be avoided).
Application.get_env(:APP_NAME, :redis_host)
#=> "localhost"
Keep in mind that each application is responsible for its environment.
Do not use the functions in this module for directly accessing or modifying
the environment of other applications (as it may lead to inconsistent
data in the application environment).
In Mix projects, the environment of the application and its dependencies can
be overridden via the `config/config.exs` file. If you start the application
with Mix, that configuration is available at compile time, and at runtime too,
but take into account it is not included in the generated application resource
file, and it is not available if you start the application without Mix.
## Application module callback
For example, someone using your application can override its `:redis_host`
environment variable as follows:
config :APP_NAME, redis_host: "redis.local"
The function `put_env/3` allows dynamic configuration of the application
environment, but as a rule of thumb each application is responsible for its
own environment. Please do not use the functions in this module for directly
accessing or modifying the environment of other applications.
The application environment can be overridden via the `-config` option of
`erl`, as well as command-line options, as we are going to see below.
## The application callback module
The `mod` key of an application resource file configures an application
callback module and start argument:
Often times, an application defines a supervision tree that must be started
and stopped when the application starts and stops. For such, we need to
define an application module callback. The first step is to define the
module callback in the application definition in the `mix.exs` file:
def application do
[mod: {MyApp, []}]
end
This key is optional, only needed for applications that start a supervision tree.
The `MyApp` module given to `:mod` needs to implement the `Application` behaviour.
This can be done by putting `use Application` in that module and implementing the
`c:start/2` callback, for example:
Our application now requires the `MyApp` module to provide an application
callback. This can be done by invoking `use Application` in that module and
defining a `start/2` callback, for example:
defmodule MyApp do
use Application
def start(_type, _args) do
children = []
Supervisor.start_link(children, strategy: :one_for_one)
MyApp.Supervisor.start_link()
end
end
The `c:start/2` callback has to spawn and link a supervisor and return `{:ok,
pid}` or `{:ok, pid, state}`, where `pid` is the PID of the supervisor, and
`state` is an optional application state. `args` is the second element of the
tuple given to the `:mod` option.
`start/2` typically returns `{:ok, pid}` or `{:ok, pid, state}` where
`pid` identifies the supervision tree and `state` is the application state.
`args` is the second element of the tuple given to the `:mod` option.
The `type` argument passed to `c:start/2` is usually `:normal` unless in a
The `type` argument passed to `start/2` is usually `:normal` unless in a
distributed setup where application takeovers and failovers are configured.
Distributed applications are beyond the scope of this documentation.
This particular aspect of applications is explained in more detail in the
OTP documentation:
When an application is shutting down, its `c:stop/1` callback is called after
the supervision tree has been stopped by the runtime. This callback allows the
application to do any final cleanup. The argument is the state returned by
`c:start/2`, if it did, or `[]` otherwise. The return value of `c:stop/1` is
ignored.
* [`:application` module](http://www.erlang.org/doc/man/application.html)
* [Applications – OTP Design Principles](http://www.erlang.org/doc/design_principles/applications.html)
By using `Application`, modules get a default implementation of `c:stop/1`
that ignores its argument and returns `:ok`, but it can be overridden.
Application callback modules may also implement the optional callback
`c:prep_stop/1`. If present, `c:prep_stop/1` is invoked before the supervision
tree is terminated. Its argument is the state returned by `c:start/2`, if it did,
or `[]` otherwise, and its return value is passed to `c:stop/1`.
## The application lifecycle
### Loading applications
Applications are *loaded*, which means that the runtime finds and processes
their resource files:
Application.load(:ex_unit)
#=> :ok
If an application has included applications, they are also loaded. And the
procedure recurses if they in turn have included applications. Included
applications are unrelated to applications in Mix umbrella projects, they are
an Erlang/OTP concept that has to do with coordinated starts.
When an application is loaded, the environment specified in its resource file
is merged with any overrides from config files passed to `erl` via the
`-config` option. It is worth highlighting that releases pass `sys.config`
this way. The resulting environment can still be overridden again via specific
`-Application` options passed to `erl`.
Loading an application *does not* load its modules.
In practice, you rarely load applications by hand because that is part of the
start process, explained next.
### Starting applications
Applications are also *started*:
Application.start(:ex_unit)
#=> :ok
Once your application is compiled, running your system is a matter of starting
your current application and its dependencies. Differently from other languages,
Elixir does not have a `main` procedure that is responsible for starting your
system. Instead, you start one or more applications, each with their own
initialization and termination logic.
When an application is started, the runtime loads it if it hasn't been loaded
yet (in the technical sense described above). Then, it checks if the
dependencies listed in the `applications` key of the resource file are already
started. Having at least one dependency not started is an error condition, but
when you start an application with `mix run`, Mix takes care of starting all
the dependencies for you, so in practice you don't need to worry about it
unless you are starting applications manually with the API provided by this
module.
If the application does not have a callback module configured, starting is
done at this point. Otherwise, its `c:start/2` callback if invoked. The PID of
the top-level supervisor returned by this function is stored by the runtime
for later use, and the returned application state is saved too, if any.
### Stopping applications
Started applications are, finally, *stopped*:
Application.stop(:ex_unit)
#=> :ok
Stopping an application without a callback module is defined, but except for
some system tracing, it is in practice a no-op.
Stopping an application with a callback module has three steps:
1. If present, invoke the optional callback `c:prep_stop/1`.
2. Terminate the top-level supervisor.
3. Invoke the required callback `c:stop/1`.
The arguments passed to the callbacks are related to the state optionally
returned by `c:start/2`, and are documented in the section about the callback
module above.
It is important to highlight that step 2 is a blocking one. Termination of a
supervisor triggers a recursive chain of children terminations, therefore
orderly shutting down all descendant processes. The `c:stop/1` callback is
invoked only after termination of the whole supervision tree.
Shutting down a live system cleanly can be done by calling `System.stop/1`. It
will shut down every application in the opposite order they had been started.
By default, a SIGTERM from the operating system will automatically translate to
`System.stop/0`. You can also have more explicit control over operating system
signals via the `:os.set_signal/2` function.
## Tooling
The Mix build tool can also be used to start your applications. For example,
`mix test` automatically starts your application dependencies and your application
itself before your test runs. `mix run --no-halt` boots your current project and
can be used to start a long running system. See `mix help run`.
Developers can also use tools like [Distillery](https://github.com/bitwalker/distillery)
that build **releases**. Releases are able to package all of your source code
as well as the Erlang VM into a single directory. Releases also give you explicit
control over how each application is started and in which order. They also provide
a more streamlined mechanism for starting and stopping systems, debugging, logging,
as well as system monitoring.
Finally, Elixir provides tools such as escripts and archives, which are
different mechanisms for packaging your application. Those are typically used
when tools must be shared between developers and not as deployment options.
See `mix help archive.build` and `mix help escript.build` for more detail.
## Further information
For further details on applications please check the documentation of the
[`application`](http://www.erlang.org/doc/man/application.html) Erlang module,
and the
[Applications](http://www.erlang.org/doc/design_principles/applications.html)
section of the [OTP Design Principles User's
Guide](http://erlang.org/doc/design_principles/users_guide.html).
A developer may also implement the `stop/1` callback (automatically defined
by `use Application`) which does any application cleanup. It receives the
application state and can return any value. Note that shutting down the
supervisor is automatically handled by the VM.
"""
@doc """
Called when an application is started.
This function is called when an application is started using
`Application.start/2` (and functions on top of that, such as
`Application.ensure_started/2`). This function should start the top-level
process of the application (which should be the top supervisor of the
application's supervision tree if the application follows the OTP design
principles around supervision).
`start_type` defines how the application is started:
* `:normal` - used if the startup is a normal startup or if the application
is distributed and is started on the current node because of a failover
from another node and the application specification key `:start_phases`
is `:undefined`.
* `{:takeover, node}` - used if the application is distributed and is
started on the current node because of a failover on the node `node`.
* `{:failover, node}` - used if the application is distributed and is
started on the current node because of a failover on node `node`, and the
application specification key `:start_phases` is not `:undefined`.
`start_args` are the arguments passed to the application in the `:mod`
specification key (e.g., `mod: {MyApp, [:my_args]}`).
This function should either return `{:ok, pid}` or `{:ok, pid, state}` if
startup is successful. `pid` should be the PID of the top supervisor. `state`
can be an arbitrary term, and if omitted will default to `[]`; if the
application is later stopped, `state` is passed to the `stop/1` callback (see
the documentation for the `c:stop/1` callback for more information).
`use Application` provides no default implementation for the `start/2`
callback.
"""
@callback start(start_type, start_args :: term) ::
{:ok, pid}
| {:ok, pid, state}
| {:error, reason :: term}
@doc """
Called before stopping the application.
This function is called before the top-level supervisor is terminated. It
receives the state returned by `c:start/2`, if it did, or `[]` otherwise.
The return value is later passed to `c:stop/1`.
"""
@callback prep_stop(state) :: state
@doc """
Called after an application has been stopped.
This function is called after an application has been stopped, i.e., after its
supervision tree has been stopped. It should do the opposite of what the
`c:start/2` callback did, and should perform any necessary cleanup. The return
value of this callback is ignored.
`state` is the state returned by `c:start/2`, if it did, or `[]` otherwise.
If the optional callback `c:prep_stop/1` is present, `state` is its return
value instead.
`use Application` defines a default implementation of this function which does
nothing and just returns `:ok`.
"""
@callback stop(state) :: term
@doc """
Starts an application in synchronous phases.
This function is called after `start/2` finishes but before
`Application.start/2` returns. It will be called once for every start phase
defined in the application's (and any included applications') specification,
in the order they are listed in.
"""
@callback start_phase(phase :: term, start_type, phase_args :: term) ::
:ok | {:error, reason :: term}
@doc """
Callback invoked after code upgrade, if the application environment
has changed.
`changed` is a keyword list of keys and their changed values in the
application environment. `new` is a keyword list with all new keys
and their values. `removed` is a list with all removed keys.
"""
@callback config_change(changed, new, removed) :: :ok
when changed: keyword, new: keyword, removed: [atom]
@optional_callbacks start_phase: 3, prep_stop: 1, config_change: 3
@doc false
defmacro __using__(_) do
quote location: :keep do
@behaviour Application
@behaviour :application
@doc false
def stop(_state) do
:ok
end
defoverridable Application
defoverridable [stop: 1]
end
end
@application_keys [
:description,
:id,
:vsn,
:modules,
:maxP,
:maxT,
:registered,
:included_applications,
:applications,
:mod,
:start_phases
]
application_key_specs = Enum.reduce(@application_keys, &{:|, [], [&1, &2]})
@type app :: atom
@type key :: atom
@type application_key :: unquote(application_key_specs)
@type value :: term
@type state :: term
@type start_type :: :normal | {:takeover, node} | {:failover, node}
@type restart_type :: :permanent | :transient | :temporary
@type start_type :: :permanent | :transient | :temporary
@application_keys [:description, :id, :vsn, :modules, :maxP, :maxT, :registered,
:included_applications, :applications, :mod, :start_phases]
@doc """
Returns the spec for `app`.
The following keys are returned:
* #{Enum.map_join(@application_keys, "\n * ", &"`#{inspect(&1)}`")}
* #{Enum.map_join @application_keys, "\n * ", &inspect/1}
Note the environment is not returned as it can be accessed via
`fetch_env/2`. Returns `nil` if the application is not loaded.
"""
@spec spec(app) :: [{application_key, value}] | nil
def spec(app) when is_atom(app) do
@spec spec(app) :: [{key, value}] | nil
def spec(app) do
case :application.get_all_key(app) do
{:ok, info} -> :lists.keydelete(:env, 1, info)
:undefined -> nil
:undefined -> nil
end
end
@doc """
Returns the value for `key` in `app`'s specification.
See `spec/1` for the supported keys. If the given
See `spec/1` for the supporte keys. If the given
specification parameter does not exist, this function
will raise. Returns `nil` if the application is not loaded.
will raise.
"""
@spec spec(app, application_key) :: value | nil
def spec(app, key) when is_atom(app) and key in @application_keys do
case :application.get_key(app, key) do
{:ok, value} -> value
:undefined -> nil
end
@spec spec(app, key) :: value
def spec(app, key) when key in @application_keys do
{:ok, value} = :application.get_key(app, key)
value
end
@doc """
Gets the application for the given module.
Get the application for the given module.
The application is located by analyzing the spec
of all loaded applications. Returns `nil` if
@@ -409,7 +162,7 @@ defmodule Application do
Returns all key-value pairs for `app`.
"""
@spec get_all_env(app) :: [{key, value}]
def get_all_env(app) when is_atom(app) do
def get_all_env(app) do
:application.get_all_env(app)
end
@@ -418,44 +171,9 @@ defmodule Application do
If the configuration parameter does not exist, the function returns the
`default` value.
## Examples
`get_env/3` is commonly used to read the configuration of your OTP applications.
Since Mix configurations are commonly used to configure applications, we will use
this as a point of illustration.
Consider a new application `:my_app`. `:my_app` contains a database engine which
supports a pool of databases. The database engine needs to know the configuration for
each of those databases, and that configuration is supplied by key-value pairs in
environment of `:my_app`.
config :my_app, Databases.RepoOne,
# A database configuration
ip: "localhost",
port: 5433
config :my_app, Databases.RepoTwo,
# Another database configuration (for the same OTP app)
ip: "localhost",
port: 20717
config :my_app, my_app_databases: [Databases.RepoOne, Databases.RepoTwo]
Our database engine used by `:my_app` needs to know what databases exist, and
what the database configurations are. The database engine can make a call to
`get_env(:my_app, :my_app_databases)` to retrieve the list of databases (specified
by module names). Our database engine can then traverse each repository in the
list and then call `get_env(:my_app, Databases.RepoOne)` and so forth to retrieve
the configuration of each one.
**Important:** if you are writing a library to be used by other developers,
it is generally recommended to avoid the application environment, as the
application environment is effectively a global storage. For more information,
read our [library guidelines](library-guidelines.html).
"""
@spec get_env(app, key, value) :: value
def get_env(app, key, default \\ nil) when is_atom(app) do
def get_env(app, key, default \\ nil) do
:application.get_env(app, key, default)
end
@@ -465,7 +183,7 @@ defmodule Application do
If the configuration parameter does not exist, the function returns `:error`.
"""
@spec fetch_env(app, key) :: {:ok, value} | :error
def fetch_env(app, key) when is_atom(app) do
def fetch_env(app, key) do
case :application.get_env(app, key) do
{:ok, value} -> {:ok, value}
:undefined -> :error
@@ -477,30 +195,14 @@ defmodule Application do
If the configuration parameter does not exist, raises `ArgumentError`.
"""
@spec fetch_env!(app, key) :: value
def fetch_env!(app, key) when is_atom(app) do
@spec fetch_env!(app, key) :: value | no_return
def fetch_env!(app, key) do
case fetch_env(app, key) do
{:ok, value} ->
value
{:ok, value} -> value
:error ->
vsn = :application.get_key(app, :vsn)
app = inspect(app)
key = inspect(key)
case vsn do
{:ok, _} ->
raise ArgumentError,
"could not fetch application environment #{key} for application #{app} " <>
"because configuration #{key} was not set"
:undefined ->
raise ArgumentError,
"could not fetch application environment #{key} for application #{app} " <>
"because the application was not loaded/started. If your application " <>
"depends on #{app} at runtime, make sure to load/start it or list it " <>
"under :extra_applications in your mix.exs file"
end
raise ArgumentError,
"application #{inspect app} is not loaded, " <>
"or the configuration parameter #{inspect key} is not set"
end
end
@@ -509,61 +211,30 @@ defmodule Application do
## Options
* `:timeout` - the timeout for the change (defaults to `5_000` milliseconds)
* `:timeout` - the timeout for the change (defaults to 5000ms)
* `:persistent` - persists the given value on application load and reloads
If `put_env/4` is called before the application is loaded, the application
environment values specified in the `.app` file will override the ones
previously set.
The `:persistent` option can be set to `true` when there is a need to guarantee
The persistent option can be set to `true` when there is a need to guarantee
parameters set with this function will not be overridden by the ones defined
in the application resource file on load. This means persistent values will
stick after the application is loaded and also on application reload.
"""
@spec put_env(app, key, value, timeout: timeout, persistent: boolean) :: :ok
def put_env(app, key, value, opts \\ []) when is_atom(app) do
@spec put_env(app, key, value, [timeout: timeout, persistent: boolean]) :: :ok
def put_env(app, key, value, opts \\ []) do
:application.set_env(app, key, value, opts)
end
@doc """
Puts the environment for multiple apps at the same time.
The given config should not:
* have the same application listed more than once
* have the same key inside the same application listed more than once
If those conditions are not met, the behaviour is undefined
(on Erlang/OTP 21 and earlier) or will raise (on Erlang/OTP 22
and later).
It receives the same options as `put_env/4`. Returns `:ok`.
"""
@spec put_all_env([{app, [{key, value}]}], timeout: timeout, persistent: boolean) :: :ok
def put_all_env(config, opts \\ []) when is_list(config) and is_list(opts) do
# TODO: Remove function exported? check when we require Erlang/OTP 22+
if function_exported?(:application, :set_env, 2) do
:application.set_env(config, opts)
else
for app_keyword <- config,
{app, keyword} = app_keyword,
key_value <- keyword,
{key, value} = key_value do
:application.set_env(app, key, value, opts)
end
:ok
end
end
@doc """
Deletes the `key` from the given `app` environment.
It receives the same options as `put_env/4`. Returns `:ok`.
See `put_env/4` for a description of the options.
"""
@spec delete_env(app, key, timeout: timeout, persistent: boolean) :: :ok
def delete_env(app, key, opts \\ []) when is_atom(app) do
@spec delete_env(app, key, [timeout: timeout, persistent: boolean]) :: :ok
def delete_env(app, key, opts \\ []) do
:application.unset_env(app, key, opts)
end
@@ -577,7 +248,7 @@ defmodule Application do
:ok = Application.ensure_started(:my_test_dep)
"""
@spec ensure_started(app, restart_type) :: :ok | {:error, term}
@spec ensure_started(app, start_type) :: :ok | {:error, term}
def ensure_started(app, type \\ :temporary) when is_atom(app) do
:application.ensure_started(app, type)
end
@@ -589,7 +260,7 @@ defmodule Application do
`:applications` in the `.app` file in case they were not previously
started.
"""
@spec ensure_all_started(app, restart_type) :: {:ok, [app]} | {:error, {app, term}}
@spec ensure_all_started(app, start_type) :: {:ok, [app]} | {:error, {app, term}}
def ensure_all_started(app, type \\ :temporary) when is_atom(app) do
:application.ensure_all_started(app, type)
end
@@ -605,7 +276,7 @@ defmodule Application do
started before this application is. If not, `{:error, {:not_started, app}}` is
returned, where `app` is the name of the missing application.
In case you want to automatically load **and start** all of `app`'s dependencies,
In case you want to automatically load **and start** all of `app`'s dependencies,
see `ensure_all_started/2`.
The `type` argument specifies the type of the application:
@@ -628,7 +299,7 @@ defmodule Application do
Note also that the `:transient` type is of little practical use, since when a
supervision tree terminates, the reason is set to `:shutdown`, not `:normal`.
"""
@spec start(app, restart_type) :: :ok | {:error, term}
@spec start(app, start_type) :: :ok | {:error, term}
def start(app, type \\ :temporary) when is_atom(app) do
:application.start(app, type)
end
@@ -639,7 +310,7 @@ defmodule Application do
When stopped, the application is still loaded.
"""
@spec stop(app) :: :ok | {:error, term}
def stop(app) when is_atom(app) do
def stop(app) do
:application.stop(app)
end
@@ -690,50 +361,28 @@ defmodule Application do
#=> "bar-123"
For more information on code paths, check the `Code` module in
Elixir and also Erlang's [`:code` module](http://www.erlang.org/doc/man/code.html).
Elixir and also Erlang's `:code` module.
"""
@spec app_dir(app) :: String.t()
@spec app_dir(app) :: String.t
def app_dir(app) when is_atom(app) do
case :code.lib_dir(app) do
lib when is_list(lib) -> IO.chardata_to_string(lib)
{:error, :bad_name} -> raise ArgumentError, "unknown application: #{inspect(app)}"
{:error, :bad_name} -> raise ArgumentError, "unknown application: #{inspect app}"
end
end
@doc """
Returns the given path inside `app_dir/1`.
If `path` is a string, then it will be used as the path inside `app_dir/1`. If
`path` is a list of strings, it will be joined (see `Path.join/1`) and the result
will be used as the path inside `app_dir/1`.
## Examples
File.mkdir_p!("foo/ebin")
Code.prepend_path("foo/ebin")
Application.app_dir(:foo, "my_path")
#=> "foo/my_path"
Application.app_dir(:foo, ["my", "nested", "path"])
#=> "foo/my/nested/path"
"""
@spec app_dir(app, String.t() | [String.t()]) :: String.t()
def app_dir(app, path)
def app_dir(app, path) when is_atom(app) and is_binary(path) do
@spec app_dir(app, String.t) :: String.t
def app_dir(app, path) when is_binary(path) do
Path.join(app_dir(app), path)
end
def app_dir(app, path) when is_atom(app) and is_list(path) do
Path.join([app_dir(app) | path])
end
@doc """
Returns a list with information about the applications which are currently running.
"""
@spec started_applications(timeout) :: [{app, description :: charlist(), vsn :: charlist()}]
@spec started_applications(timeout) :: [tuple]
def started_applications(timeout \\ 5000) do
:application.which_applications(timeout)
end
@@ -741,9 +390,9 @@ defmodule Application do
@doc """
Returns a list with information about the applications which have been loaded.
"""
@spec loaded_applications :: [{app, description :: charlist(), vsn :: charlist()}]
@spec loaded_applications :: [tuple]
def loaded_applications do
:application.loaded_applications()
:application.loaded_applications
end
@doc """
@@ -751,12 +400,12 @@ defmodule Application do
`ensure_started/2`, `stop/1`, `load/1` and `unload/1`,
returns a string.
"""
@spec format_error(any) :: String.t()
@spec format_error(any) :: String.t
def format_error(reason) do
try do
do_format_error(reason)
impl_format_error(reason)
catch
# A user could create an error that looks like a built-in one
# A user could create an error that looks like a builtin one
# causing an error.
:error, _ ->
inspect(reason)
@@ -764,67 +413,68 @@ defmodule Application do
end
# exit(:normal) call is special cased, undo the special case.
defp do_format_error({{:EXIT, :normal}, {mod, :start, args}}) do
defp impl_format_error({{:EXIT, :normal}, {mod, :start, args}}) do
Exception.format_exit({:normal, {mod, :start, args}})
end
# {:error, reason} return value
defp do_format_error({reason, {mod, :start, args}}) do
Exception.format_mfa(mod, :start, args) <>
" returned an error: " <> Exception.format_exit(reason)
defp impl_format_error({reason, {mod, :start, args}}) do
Exception.format_mfa(mod, :start, args) <> " returned an error: " <>
Exception.format_exit(reason)
end
# error or exit(reason) call, use exit reason as reason.
defp do_format_error({:bad_return, {{mod, :start, args}, {:EXIT, reason}}}) do
defp impl_format_error({:bad_return, {{mod, :start, args}, {:EXIT, reason}}}) do
Exception.format_exit({reason, {mod, :start, args}})
end
# bad return value
defp do_format_error({:bad_return, {{mod, :start, args}, return}}) do
Exception.format_mfa(mod, :start, args) <> " returned a bad value: " <> inspect(return)
defp impl_format_error({:bad_return, {{mod, :start, args}, return}}) do
Exception.format_mfa(mod, :start, args) <>
" returned a bad value: " <> inspect(return)
end
defp do_format_error({:already_started, app}) when is_atom(app) do
defp impl_format_error({:already_started, app}) when is_atom(app) do
"already started application #{app}"
end
defp do_format_error({:not_started, app}) when is_atom(app) do
defp impl_format_error({:not_started, app}) when is_atom(app) do
"not started application #{app}"
end
defp do_format_error({:bad_application, app}) do
defp impl_format_error({:bad_application, app}) do
"bad application: #{inspect(app)}"
end
defp do_format_error({:already_loaded, app}) when is_atom(app) do
defp impl_format_error({:already_loaded, app}) when is_atom(app) do
"already loaded application #{app}"
end
defp do_format_error({:not_loaded, app}) when is_atom(app) do
defp impl_format_error({:not_loaded, app}) when is_atom(app) do
"not loaded application #{app}"
end
defp do_format_error({:invalid_restart_type, restart}) do
defp impl_format_error({:invalid_restart_type, restart}) do
"invalid application restart type: #{inspect(restart)}"
end
defp do_format_error({:invalid_name, name}) do
defp impl_format_error({:invalid_name, name}) do
"invalid application name: #{inspect(name)}"
end
defp do_format_error({:invalid_options, opts}) do
defp impl_format_error({:invalid_options, opts}) do
"invalid application options: #{inspect(opts)}"
end
defp do_format_error({:badstartspec, spec}) do
defp impl_format_error({:badstartspec, spec}) do
"bad application start specs: #{inspect(spec)}"
end
defp do_format_error({'no such file or directory', file}) do
defp impl_format_error({'no such file or directory', file}) do
"could not find application file: #{file}"
end
defp do_format_error(reason) do
defp impl_format_error(reason) do
Exception.format_exit(reason)
end
end
+5 -10
View File
@@ -16,29 +16,24 @@ defmodule Atom do
"foo"
"""
@spec to_string(atom) :: String.t()
@spec to_string(atom) :: String.t
def to_string(atom) do
:erlang.atom_to_binary(atom, :utf8)
end
@doc """
Converts an atom to a charlist.
Converts an atom to a char list.
Inlined by the compiler.
## Examples
iex> Atom.to_charlist(:"An atom")
iex> Atom.to_char_list(:"An atom")
'An atom'
"""
@spec to_charlist(atom) :: charlist
def to_charlist(atom) do
@spec to_char_list(atom) :: char_list
def to_char_list(atom) do
:erlang.atom_to_list(atom)
end
@doc false
@deprecated "Use Atom.to_charlist/1 instead"
@spec to_char_list(atom) :: charlist
def to_char_list(atom), do: Atom.to_charlist(atom)
end
+322 -872
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File diff suppressed because it is too large Load Diff
+17 -38
View File
@@ -1,18 +1,14 @@
defmodule Behaviour do
@moduledoc """
Mechanism for handling behaviours.
This module has been deprecated.
This module is deprecated. Instead of `defcallback/1` and
`defmacrocallback/1`, the `@callback` and `@macrocallback`
module attributes can be used (respectively). See the
documentation for `Module` for more information on these
attributes.
Instead of `MyModule.__behaviour__(:callbacks)`,
`MyModule.behaviour_info(:callbacks)` can be used.
Instead of `defcallback`, one can simply use `@callback`.
Instead of `defmacrocallback`, one can simply use `@macrocallback`.
Instead of `__behaviour__(:callbacks)`, one can simply use `behaviour_info(:callbacks)`.
"""
@moduledoc deprecated: "Use @callback and @macrocallback attributes instead"
# TODO: Deprecate by 1.2
# TODO: Remove by 2.0
@doc """
Defines a function callback according to the given type specification.
@@ -25,10 +21,10 @@ defmodule Behaviour do
Defines a macro callback according to the given type specification.
"""
defmacro defmacrocallback(spec) do
do_defcallback(:defmacro, split_spec(spec, quote(do: Macro.t())))
do_defcallback(:defmacro, split_spec(spec, quote(do: Macro.t)))
end
defp split_spec({:when, _, [{:"::", _, [spec, return]}, guard]}, _default) do
defp split_spec({:when, _, [{:::, _, [spec, return]}, guard]}, _default) do
{spec, return, guard}
end
@@ -36,7 +32,7 @@ defmodule Behaviour do
{spec, default, guard}
end
defp split_spec({:"::", _, [spec, return]}, _default) do
defp split_spec({:::, _, [spec, return]}, _default) do
{spec, return, []}
end
@@ -48,25 +44,21 @@ defmodule Behaviour do
case Macro.decompose_call(spec) do
{name, args} ->
do_callback(kind, name, args, return, guards)
_ ->
raise ArgumentError, "invalid syntax in #{kind}callback #{Macro.to_string(spec)}"
end
end
defp do_callback(kind, name, args, return, guards) do
fun = fn
{:"::", _, [left, right]} ->
:lists.foreach fn
{:::, _, [left, right]} ->
ensure_not_default(left)
ensure_not_default(right)
left
other ->
ensure_not_default(other)
other
end
:lists.foreach(fun, args)
end, args
spec =
quote do
@@ -74,8 +66,8 @@ defmodule Behaviour do
end
case kind do
:def -> quote(do: @callback(unquote(spec)))
:defmacro -> quote(do: @macrocallback(unquote(spec)))
:def -> quote(do: @callback unquote(spec))
:defmacro -> quote(do: @macrocallback unquote(spec))
end
end
@@ -88,33 +80,20 @@ defmodule Behaviour do
@doc false
defmacro __using__(_) do
quote do
warning =
"the Behaviour module is deprecated. Instead of using this module, " <>
"use the @callback and @macrocallback module attributes. See the " <>
"documentation for Module for more information on these attributes"
IO.warn(warning)
@doc false
def __behaviour__(:callbacks) do
__MODULE__.behaviour_info(:callbacks)
end
def __behaviour__(:docs) do
{:docs_v1, _, :elixir, _, _, _, docs} = Code.fetch_docs(__MODULE__)
for {{kind, name, arity}, line, _, doc, _} <- docs, kind in [:callback, :macrocallback] do
for {tuple, line, kind, docs} <- Code.get_docs(__MODULE__, :callback_docs) do
case kind do
:callback -> {{name, arity}, line, :def, __behaviour__doc_value(doc)}
:macrocallback -> {{name, arity}, line, :defmacro, __behaviour__doc_value(doc)}
:callback -> {tuple, line, :def, docs}
:macrocallback -> {tuple, line, :defmacro, docs}
end
end
end
defp __behaviour__doc_value(:none), do: nil
defp __behaviour__doc_value(:hidden), do: false
defp __behaviour__doc_value(%{"en" => doc}), do: doc
import unquote(__MODULE__)
end
end
+29 -53
View File
@@ -1,38 +1,30 @@
defmodule Bitwise do
@moduledoc """
A set of macros that perform calculations on bits.
This module provides macro-based operators that perform calculations
on (sets of) bits.
The macros in this module come in two flavors: named or
operators. For example:
In general, you should `use` the Bitwise module as a whole:
iex> use Bitwise
iex> bnot(1) # named
iex> bnot 1
-2
iex> 1 &&& 1 # operator
iex> 1 &&& 1
1
If you prefer to use only operators or skip them, you can
pass the following options:
When used, it accepts the following options:
* `:only_operators` - includes only operators
* `:skip_operators` - skips operators
For example:
* `:only_operators` - include only operators
* `:skip_operators` - skip operators
iex> use Bitwise, only_operators: true
iex> 1 &&& 1
1
When invoked with no options, `use Bitwise` is equivalent
to `import Bitwise`.
All bitwise macros can be used in guards:
These macros can be used in guards:
iex> use Bitwise
iex> odd? = fn
...> int when band(int, 1) == 1 -> true
...> _ -> false
...> end
iex> odd? = fn(int) when band(int, 1) == 1 -> true; (_) -> false end
iex> odd?.(1)
true
@@ -40,17 +32,13 @@ defmodule Bitwise do
@doc false
defmacro __using__(options) do
except =
cond do
Keyword.get(options, :only_operators) ->
[bnot: 1, band: 2, bor: 2, bxor: 2, bsl: 2, bsr: 2]
Keyword.get(options, :skip_operators) ->
[~~~: 1, &&&: 2, |||: 2, ^^^: 2, <<<: 2, >>>: 2]
true ->
[]
end
except = cond do
Keyword.get(options, :only_operators) ->
[bnot: 1, band: 2, bor: 2, bxor: 2, bsl: 2, bsr: 2]
Keyword.get(options, :skip_operators) ->
[~~~: 1, &&&: 2, |||: 2, ^^^: 2, <<<: 2, >>>: 2]
true -> []
end
quote do
import Bitwise, except: unquote(except)
@@ -66,9 +54,8 @@ defmodule Bitwise do
1
"""
@doc guard: true
defmacro bnot(expr) do
quote(do: :erlang.bnot(unquote(expr)))
quote do: :erlang.bnot(unquote(expr))
end
@doc """
@@ -80,9 +67,8 @@ defmodule Bitwise do
1
"""
@doc guard: true
defmacro ~~~expr do
quote(do: :erlang.bnot(unquote(expr)))
quote do: :erlang.bnot(unquote(expr))
end
@doc """
@@ -92,9 +78,8 @@ defmodule Bitwise do
1
"""
@doc guard: true
defmacro band(left, right) do
quote(do: :erlang.band(unquote(left), unquote(right)))
quote do: :erlang.band(unquote(left), unquote(right))
end
@doc """
@@ -104,9 +89,8 @@ defmodule Bitwise do
1
"""
@doc guard: true
defmacro left &&& right do
quote(do: :erlang.band(unquote(left), unquote(right)))
quote do: :erlang.band(unquote(left), unquote(right))
end
@doc """
@@ -116,9 +100,8 @@ defmodule Bitwise do
11
"""
@doc guard: true
defmacro bor(left, right) do
quote(do: :erlang.bor(unquote(left), unquote(right)))
quote do: :erlang.bor(unquote(left), unquote(right))
end
@doc """
@@ -128,9 +111,8 @@ defmodule Bitwise do
11
"""
@doc guard: true
defmacro left ||| right do
quote(do: :erlang.bor(unquote(left), unquote(right)))
quote do: :erlang.bor(unquote(left), unquote(right))
end
@doc """
@@ -140,9 +122,8 @@ defmodule Bitwise do
10
"""
@doc guard: true
defmacro bxor(left, right) do
quote(do: :erlang.bxor(unquote(left), unquote(right)))
quote do: :erlang.bxor(unquote(left), unquote(right))
end
@doc """
@@ -152,9 +133,8 @@ defmodule Bitwise do
10
"""
@doc guard: true
defmacro left ^^^ right do
quote(do: :erlang.bxor(unquote(left), unquote(right)))
quote do: :erlang.bxor(unquote(left), unquote(right))
end
@doc """
@@ -170,9 +150,8 @@ defmodule Bitwise do
-1
"""
@doc guard: true
defmacro bsl(left, right) do
quote(do: :erlang.bsl(unquote(left), unquote(right)))
quote do: :erlang.bsl(unquote(left), unquote(right))
end
@doc """
@@ -188,9 +167,8 @@ defmodule Bitwise do
-1
"""
@doc guard: true
defmacro left <<< right do
quote(do: :erlang.bsl(unquote(left), unquote(right)))
quote do: :erlang.bsl(unquote(left), unquote(right))
end
@doc """
@@ -206,9 +184,8 @@ defmodule Bitwise do
-4
"""
@doc guard: true
defmacro bsr(left, right) do
quote(do: :erlang.bsr(unquote(left), unquote(right)))
quote do: :erlang.bsr(unquote(left), unquote(right))
end
@doc """
@@ -224,8 +201,7 @@ defmodule Bitwise do
-4
"""
@doc guard: true
defmacro left >>> right do
quote(do: :erlang.bsr(unquote(left), unquote(right)))
quote do: :erlang.bsr(unquote(left), unquote(right))
end
end
-320
View File
@@ -1,320 +0,0 @@
defmodule Calendar do
@moduledoc """
This module defines the responsibilities for working with
calendars, dates, times and datetimes in Elixir.
Currently it defines types and the minimal implementation
for a calendar behaviour in Elixir. The goal of the Calendar
features in Elixir is to provide a base for interoperability
instead of full-featured datetime API.
For the actual date, time and datetime structures, see `Date`,
`Time`, `NaiveDateTime` and `DateTime`.
Note the year, month, day, etc. designations are overspecified
(i.e. an integer instead of `1..12` for months) because different
calendars may have a different number of days per month, months per year and so on.
"""
@type year :: integer
@type month :: pos_integer
@type day :: pos_integer
@type week :: pos_integer
@type day_of_week :: non_neg_integer
@type era :: non_neg_integer
@type hour :: non_neg_integer
@type minute :: non_neg_integer
@type second :: non_neg_integer
@typedoc """
The internal time format is used when converting between calendars.
It represents time as a fraction of a day (starting from midnight).
`parts_in_day` specifies how much of the day is already passed,
while `parts_per_day` signifies how many parts there fit in a day.
"""
@type day_fraction :: {parts_in_day :: non_neg_integer, parts_per_day :: pos_integer}
@typedoc """
The internal date format that is used when converting between calendars.
This is the number of days including the fractional part that has passed of
the last day since 0000-01-01+00:00T00:00.000000 in ISO 8601 notation (also
known as midnight 1 January BC 1 of the proleptic Gregorian calendar).
"""
@type iso_days :: {days :: integer, day_fraction}
@typedoc """
Microseconds with stored precision.
The precision represents the number of digits that must be used when
representing the microseconds to external format. If the precision is 0,
it means microseconds must be skipped.
"""
@type microsecond :: {0..999_999, 0..6}
@typedoc "A calendar implementation"
@type calendar :: module
@typedoc "The time zone ID according to the IANA tz database (e.g. Europe/Zurich)"
@type time_zone :: String.t()
@typedoc "The time zone abbreviation (e.g. CET or CEST or BST etc.)"
@type zone_abbr :: String.t()
@typedoc "The time zone UTC offset in seconds"
@type utc_offset :: integer
@typedoc "The time zone standard offset in seconds (not zero in summer times)"
@type std_offset :: integer
@typedoc "Any map/struct that contains the date fields"
@type date :: %{optional(any) => any, calendar: calendar, year: year, month: month, day: day}
@typedoc "Any map/struct that contains the time fields"
@type time :: %{
optional(any) => any,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
@typedoc "Any map/struct that contains the naive_datetime fields"
@type naive_datetime :: %{
optional(any) => any,
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
@typedoc "Any map/struct that contains the datetime fields"
@type datetime :: %{
optional(any) => any,
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
time_zone: time_zone,
zone_abbr: zone_abbr,
utc_offset: utc_offset,
std_offset: std_offset
}
@typedoc """
Specifies the time zone database for calendar operations.
Many functions in the `DateTime` module require a time zone database.
By default, it uses the default time zone database returned by
`Calendar.get_time_zone_database/0`, which defaults to
`Calendar.UTCOnlyTimeZoneDatabase` which only handles "Etc/UTC"
datetimes and returns `{:error, :utc_only_time_zone_database}`
for any other time zone.
Other time zone databases (including ones provided by packages)
can be configure as default either via configuration:
config :elixir, :time_zone_database, CustomTimeZoneDatabase
or by calling `Calendar.put_time_zone_database/1`.
See `Calendar.TimeZoneDatabase` for more information on custom
time zone databases.
"""
@type time_zone_database :: module()
@doc """
Returns how many days there are in the given year-month.
"""
@callback days_in_month(year, month) :: day
@doc """
Returns how many months there are in the given year.
"""
@callback months_in_year(year) :: month
@doc """
Returns `true` if the given year is a leap year.
A leap year is a year of a longer length than normal. The exact meaning
is up to the calendar. A calendar must return `false` if it does not support
the concept of leap years.
"""
@callback leap_year?(year) :: boolean
@doc """
Calculates the day of the week from the given `year`, `month`, and `day`.
"""
@callback day_of_week(year, month, day) :: day_of_week()
@doc """
Calculates the day of the year from the given `year`, `month`, and `day`.
"""
@callback day_of_year(year, month, day) :: non_neg_integer()
@doc """
Calculates the quarter of the year from the given `year`, `month`, and `day`.
"""
@callback quarter_of_year(year, month, day) :: non_neg_integer()
@doc """
Calculates the year and era from the given `year`.
"""
@callback year_of_era(year) :: {year, era}
@doc """
Calculates the day and era from the given `year`, `month`, and `day`.
"""
@callback day_of_era(year, month, day) :: {non_neg_integer(), era}
@doc """
Converts the date into a string according to the calendar.
"""
@callback date_to_string(year, month, day) :: String.t()
@doc """
Converts the datetime (without time zone) into a string according to the calendar.
"""
@callback naive_datetime_to_string(year, month, day, hour, minute, second, microsecond) ::
String.t()
@doc """
Converts the datetime (with time zone) into a string according to the calendar.
"""
@callback datetime_to_string(
year,
month,
day,
hour,
minute,
second,
microsecond,
time_zone,
zone_abbr,
utc_offset,
std_offset
) :: String.t()
@doc """
Converts the time into a string according to the calendar.
"""
@callback time_to_string(hour, minute, second, microsecond) :: String.t()
@doc """
Converts the given datetime (without time zone) into the `t:iso_days/0` format.
"""
@callback naive_datetime_to_iso_days(year, month, day, hour, minute, second, microsecond) ::
iso_days
@doc """
Converts `t:iso_days/0` to the Calendar's datetime format.
"""
@callback naive_datetime_from_iso_days(iso_days) ::
{year, month, day, hour, minute, second, microsecond}
@doc """
Converts the given time to the `t:day_fraction/0` format.
"""
@callback time_to_day_fraction(hour, minute, second, microsecond) :: day_fraction
@doc """
Converts `t:day_fraction/0` to the Calendar's time format.
"""
@callback time_from_day_fraction(day_fraction) :: {hour, minute, second, microsecond}
@doc """
Define the rollover moment for the given calendar.
This is the moment, in your calendar, when the current day ends
and the next day starts.
The result of this function is used to check if two calendars rollover at
the same time of day. If they do not, we can only convert datetimes and times
between them. If they do, this means that we can also convert dates as well
as naive datetimes between them.
This day fraction should be in its most simplified form possible, to make comparisons fast.
## Examples
* If, in your Calendar, a new day starts at midnight, return {0, 1}.
* If, in your Calendar, a new day starts at sunrise, return {1, 4}.
* If, in your Calendar, a new day starts at noon, return {1, 2}.
* If, in your Calendar, a new day starts at sunset, return {3, 4}.
"""
@callback day_rollover_relative_to_midnight_utc() :: day_fraction
@doc """
Should return `true` if the given date describes a proper date in the calendar.
"""
@callback valid_date?(year, month, day) :: boolean
@doc """
Should return `true` if the given time describes a proper time in the calendar.
"""
@callback valid_time?(hour, minute, second, microsecond) :: boolean
# General Helpers
@doc """
Returns `true` if two calendars have the same moment of starting a new day,
`false` otherwise.
If two calendars are not compatible, we can only convert datetimes and times
between them. If they are compatible, this means that we can also convert
dates as well as naive datetimes between them.
"""
@doc since: "1.5.0"
@spec compatible_calendars?(Calendar.calendar(), Calendar.calendar()) :: boolean
def compatible_calendars?(calendar, calendar), do: true
def compatible_calendars?(calendar1, calendar2) do
calendar1.day_rollover_relative_to_midnight_utc() ==
calendar2.day_rollover_relative_to_midnight_utc()
end
@doc """
Returns a microsecond tuple truncated to a given precision (`:microsecond`,
`:millisecond` or `:second`).
"""
@doc since: "1.6.0"
@spec truncate(Calendar.microsecond(), :microsecond | :millisecond | :second) ::
Calendar.microsecond()
def truncate(microsecond_tuple, :microsecond), do: microsecond_tuple
def truncate({microsecond, precision}, :millisecond) do
output_precision = min(precision, 3)
{div(microsecond, 1000) * 1000, output_precision}
end
def truncate(_, :second), do: {0, 0}
@doc """
Sets the current time zone database.
"""
@doc since: "1.8.0"
@spec put_time_zone_database(time_zone_database()) :: :ok
def put_time_zone_database(database) do
Application.put_env(:elixir, :time_zone_database, database)
end
@doc """
Gets the current time zone database.
"""
@doc since: "1.8.0"
@spec get_time_zone_database() :: time_zone_database()
def get_time_zone_database() do
Application.get_env(:elixir, :time_zone_database, Calendar.UTCOnlyTimeZoneDatabase)
end
end
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@@ -1,780 +0,0 @@
defmodule Date do
@moduledoc """
A Date struct and functions.
The Date struct contains the fields year, month, day and calendar.
New dates can be built with the `new/3` function or using the
`~D` (see `Kernel.sigil_D/2`) sigil:
iex> ~D[2000-01-01]
~D[2000-01-01]
Both `new/3` and sigil return a struct where the date fields can
be accessed directly:
iex> date = ~D[2000-01-01]
iex> date.year
2000
iex> date.month
1
The functions on this module work with the `Date` struct as well
as any struct that contains the same fields as the `Date` struct,
such as `NaiveDateTime` and `DateTime`. Such functions expect
`t:Calendar.date/0` in their typespecs (instead of `t:t/0`).
Developers should avoid creating the Date structs directly
and instead rely on the functions provided by this module as well
as the ones in third-party calendar libraries.
## Comparing dates
Comparisons in Elixir using `==/2`, `>/2`, `</2` and similar are structural
and based on the `Date` struct fields. For proper comparison between
dates, use the `compare/2` function.
## Using epochs
The `add/2` and `diff/2` functions can be used for computing dates
or retrieving the number of days between instants. For example, if there
is an interest in computing the number of days from the Unix epoch
(1970-01-01):
iex> Date.diff(~D[2010-04-17], ~D[1970-01-01])
14716
iex> Date.add(~D[1970-01-01], 14716)
~D[2010-04-17]
Those functions are optimized to deal with common epochs, such
as the Unix Epoch above or the Gregorian Epoch (0000-01-01).
"""
@enforce_keys [:year, :month, :day]
defstruct [:year, :month, :day, calendar: Calendar.ISO]
@type t :: %__MODULE__{
year: Calendar.year(),
month: Calendar.month(),
day: Calendar.day(),
calendar: Calendar.calendar()
}
@doc """
Returns a range of dates.
A range of dates represents a discrete number of dates where
the first and last values are dates with matching calendars.
Ranges of dates can be either increasing (`first <= last`) or
decreasing (`first > last`). They are also always inclusive.
## Examples
iex> Date.range(~D[1999-01-01], ~D[2000-01-01])
#DateRange<~D[1999-01-01], ~D[2000-01-01]>
A range of dates implements the `Enumerable` protocol, which means
functions in the `Enum` module can be used to work with
ranges:
iex> range = Date.range(~D[2001-01-01], ~D[2002-01-01])
iex> Enum.count(range)
366
iex> Enum.member?(range, ~D[2001-02-01])
true
iex> Enum.reduce(range, 0, fn _date, acc -> acc - 1 end)
-366
"""
@doc since: "1.5.0"
@spec range(Date.t(), Date.t()) :: Date.Range.t()
def range(%Date{calendar: calendar} = first, %Date{calendar: calendar} = last) do
{first_days, _} = to_iso_days(first)
{last_days, _} = to_iso_days(last)
%Date.Range{
first: first,
last: last,
first_in_iso_days: first_days,
last_in_iso_days: last_days
}
end
def range(%Date{}, %Date{}) do
raise ArgumentError, "both dates must have matching calendars"
end
@doc """
Returns the current date in UTC.
## Examples
iex> date = Date.utc_today()
iex> date.year >= 2016
true
"""
@doc since: "1.4.0"
@spec utc_today(Calendar.calendar()) :: t
def utc_today(calendar \\ Calendar.ISO)
def utc_today(Calendar.ISO) do
{:ok, {year, month, day}, _, _} = Calendar.ISO.from_unix(System.os_time(), :native)
%Date{year: year, month: month, day: day}
end
def utc_today(calendar) do
calendar
|> DateTime.utc_now()
|> DateTime.to_date()
end
@doc """
Returns `true` if the year in the given `date` is a leap year.
## Examples
iex> Date.leap_year?(~D[2000-01-01])
true
iex> Date.leap_year?(~D[2001-01-01])
false
iex> Date.leap_year?(~D[2004-01-01])
true
iex> Date.leap_year?(~D[1900-01-01])
false
iex> Date.leap_year?(~N[2004-01-01 01:23:45])
true
"""
@doc since: "1.4.0"
@spec leap_year?(Calendar.date()) :: boolean()
def leap_year?(date)
def leap_year?(%{calendar: calendar, year: year}) do
calendar.leap_year?(year)
end
@doc """
Returns the number of days in the given `date` month.
## Examples
iex> Date.days_in_month(~D[1900-01-13])
31
iex> Date.days_in_month(~D[1900-02-09])
28
iex> Date.days_in_month(~N[2000-02-20 01:23:45])
29
"""
@doc since: "1.4.0"
@spec days_in_month(Calendar.date()) :: Calendar.day()
def days_in_month(date)
def days_in_month(%{calendar: calendar, year: year, month: month}) do
calendar.days_in_month(year, month)
end
@doc """
Returns the number of months in the given `date` year.
## Example
iex> Date.months_in_year(~D[1900-01-13])
12
"""
@doc since: "1.7.0"
@spec months_in_year(Calendar.date()) :: Calendar.month()
def months_in_year(date)
def months_in_year(%{calendar: calendar, year: year}) do
calendar.months_in_year(year)
end
@doc """
Builds a new ISO date.
Expects all values to be integers. Returns `{:ok, date}` if each
entry fits its appropriate range, returns `{:error, reason}` otherwise.
## Examples
iex> Date.new(2000, 1, 1)
{:ok, ~D[2000-01-01]}
iex> Date.new(2000, 13, 1)
{:error, :invalid_date}
iex> Date.new(2000, 2, 29)
{:ok, ~D[2000-02-29]}
iex> Date.new(2000, 2, 30)
{:error, :invalid_date}
iex> Date.new(2001, 2, 29)
{:error, :invalid_date}
"""
@spec new(Calendar.year(), Calendar.month(), Calendar.day(), Calendar.calendar()) ::
{:ok, t} | {:error, atom}
def new(year, month, day, calendar \\ Calendar.ISO) do
if calendar.valid_date?(year, month, day) do
{:ok, %Date{year: year, month: month, day: day, calendar: calendar}}
else
{:error, :invalid_date}
end
end
@doc """
Converts the given date to a string according to its calendar.
### Examples
iex> Date.to_string(~D[2000-02-28])
"2000-02-28"
iex> Date.to_string(~N[2000-02-28 01:23:45])
"2000-02-28"
iex> Date.to_string(~D[-0100-12-15])
"-0100-12-15"
"""
@spec to_string(Calendar.date()) :: String.t()
def to_string(date)
def to_string(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.date_to_string(year, month, day)
end
@doc """
Parses the extended "Dates" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
The year parsed by this function is limited to four digits.
## Examples
iex> Date.from_iso8601("2015-01-23")
{:ok, ~D[2015-01-23]}
iex> Date.from_iso8601("2015:01:23")
{:error, :invalid_format}
iex> Date.from_iso8601("2015-01-32")
{:error, :invalid_date}
"""
@spec from_iso8601(String.t(), Calendar.calendar()) :: {:ok, t} | {:error, atom}
def from_iso8601(string, calendar \\ Calendar.ISO)
def from_iso8601(<<?-, rest::binary>>, calendar) do
with {:ok, %{year: year} = date} <- raw_from_iso8601(rest, calendar) do
{:ok, %{date | year: -year}}
end
end
def from_iso8601(<<rest::binary>>, calendar) do
raw_from_iso8601(rest, calendar)
end
[match_date, guard_date, read_date] = Calendar.ISO.__match_date__()
defp raw_from_iso8601(string, calendar) do
with unquote(match_date) <- string,
true <- unquote(guard_date) do
{year, month, day} = unquote(read_date)
with {:ok, date} <- new(year, month, day, Calendar.ISO) do
convert(date, calendar)
end
else
_ -> {:error, :invalid_format}
end
end
@doc """
Parses the extended "Dates" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
Raises if the format is invalid.
## Examples
iex> Date.from_iso8601!("2015-01-23")
~D[2015-01-23]
iex> Date.from_iso8601!("2015:01:23")
** (ArgumentError) cannot parse "2015:01:23" as date, reason: :invalid_format
"""
@spec from_iso8601!(String.t(), Calendar.calendar()) :: t
def from_iso8601!(string, calendar \\ Calendar.ISO) do
case from_iso8601(string, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError, "cannot parse #{inspect(string)} as date, reason: #{inspect(reason)}"
end
end
@doc """
Converts the given `date` to
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
By default, `Date.to_iso8601/2` returns dates formatted in the "extended"
format, for human readability. It also supports the "basic" format through passing the `:basic` option.
Only supports converting dates which are in the ISO calendar,
or other calendars in which the days also start at midnight.
Attempting to convert dates from other calendars will raise an `ArgumentError`.
### Examples
iex> Date.to_iso8601(~D[2000-02-28])
"2000-02-28"
iex> Date.to_iso8601(~D[2000-02-28], :basic)
"20000228"
iex> Date.to_iso8601(~N[2000-02-28 00:00:00])
"2000-02-28"
"""
@spec to_iso8601(Calendar.date(), :extended | :basic) :: String.t()
def to_iso8601(date, format \\ :extended)
def to_iso8601(%{calendar: Calendar.ISO} = date, format) when format in [:basic, :extended] do
%{year: year, month: month, day: day} = date
Calendar.ISO.date_to_string(year, month, day, format)
end
def to_iso8601(%{calendar: _} = date, format) when format in [:basic, :extended] do
date
|> convert!(Calendar.ISO)
|> to_iso8601()
end
@doc """
Converts the given `date` to an Erlang date tuple.
Only supports converting dates which are in the ISO calendar,
or other calendars in which the days also start at midnight.
Attempting to convert dates from other calendars will raise.
## Examples
iex> Date.to_erl(~D[2000-01-01])
{2000, 1, 1}
iex> Date.to_erl(~N[2000-01-01 00:00:00])
{2000, 1, 1}
"""
@spec to_erl(Calendar.date()) :: :calendar.date()
def to_erl(date) do
%{year: year, month: month, day: day} = convert!(date, Calendar.ISO)
{year, month, day}
end
@doc """
Converts an Erlang date tuple to a `Date` struct.
Only supports converting dates which are in the ISO calendar,
or other calendars in which the days also start at midnight.
Attempting to convert dates from other calendars will return an error tuple.
## Examples
iex> Date.from_erl({2000, 1, 1})
{:ok, ~D[2000-01-01]}
iex> Date.from_erl({2000, 13, 1})
{:error, :invalid_date}
"""
@spec from_erl(:calendar.date(), Calendar.calendar()) :: {:ok, t} | {:error, atom}
def from_erl(tuple, calendar \\ Calendar.ISO)
def from_erl({year, month, day}, calendar) do
with {:ok, date} <- new(year, month, day, Calendar.ISO), do: convert(date, calendar)
end
@doc """
Converts an Erlang date tuple but raises for invalid dates.
## Examples
iex> Date.from_erl!({2000, 1, 1})
~D[2000-01-01]
iex> Date.from_erl!({2000, 13, 1})
** (ArgumentError) cannot convert {2000, 13, 1} to date, reason: :invalid_date
"""
@spec from_erl!(:calendar.date(), Calendar.calendar()) :: t
def from_erl!(tuple, calendar \\ Calendar.ISO) do
case from_erl(tuple, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot convert #{inspect(tuple)} to date, reason: #{inspect(reason)}"
end
end
@doc """
Compares two date structs.
Returns `:gt` if first date is later than the second
and `:lt` for vice versa. If the two dates are equal
`:eq` is returned.
## Examples
iex> Date.compare(~D[2016-04-16], ~D[2016-04-28])
:lt
This function can also be used to compare across more
complex calendar types by considering only the date fields:
iex> Date.compare(~D[2016-04-16], ~N[2016-04-28 01:23:45])
:lt
iex> Date.compare(~D[2016-04-16], ~N[2016-04-16 01:23:45])
:eq
iex> Date.compare(~N[2016-04-16 12:34:56], ~N[2016-04-16 01:23:45])
:eq
"""
@doc since: "1.4.0"
@spec compare(Calendar.date(), Calendar.date()) :: :lt | :eq | :gt
def compare(%{calendar: calendar} = date1, %{calendar: calendar} = date2) do
%{year: year1, month: month1, day: day1} = date1
%{year: year2, month: month2, day: day2} = date2
case {{year1, month1, day1}, {year2, month2, day2}} do
{first, second} when first > second -> :gt
{first, second} when first < second -> :lt
_ -> :eq
end
end
def compare(date1, date2) do
if Calendar.compatible_calendars?(date1.calendar, date2.calendar) do
case {to_iso_days(date1), to_iso_days(date2)} do
{first, second} when first > second -> :gt
{first, second} when first < second -> :lt
_ -> :eq
end
else
raise ArgumentError, """
cannot compare #{inspect(date1)} with #{inspect(date2)}.
This comparison would be ambiguous as their calendars have incompatible day rollover moments.
Specify an exact time of day (using DateTime) to resolve this ambiguity
"""
end
end
@doc """
Converts the given `date` from its calendar to the given `calendar`.
Returns `{:ok, date}` if the calendars are compatible,
or `{:error, :incompatible_calendars}` if they are not.
See also `Calendar.compatible_calendars?/2`.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> Date.convert(~D[2000-01-01], Calendar.Holocene)
{:ok, %Date{calendar: Calendar.Holocene, year: 12000, month: 1, day: 1}}
"""
@doc since: "1.5.0"
@spec convert(Calendar.date(), Calendar.calendar()) ::
{:ok, t} | {:error, :incompatible_calendars}
def convert(%{calendar: calendar, year: year, month: month, day: day}, calendar) do
{:ok, %Date{calendar: calendar, year: year, month: month, day: day}}
end
def convert(%{calendar: calendar} = date, target_calendar) do
if Calendar.compatible_calendars?(calendar, target_calendar) do
result_date =
date
|> to_iso_days()
|> from_iso_days(target_calendar)
{:ok, result_date}
else
{:error, :incompatible_calendars}
end
end
@doc """
Similar to `Date.convert/2`, but raises an `ArgumentError`
if the conversion between the two calendars is not possible.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> Date.convert!(~D[2000-01-01], Calendar.Holocene)
%Date{calendar: Calendar.Holocene, year: 12000, month: 1, day: 1}
"""
@doc since: "1.5.0"
@spec convert!(Calendar.date(), Calendar.calendar()) :: t
def convert!(date, calendar) do
case convert(date, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot convert #{inspect(date)} to target calendar #{inspect(calendar)}, " <>
"reason: #{inspect(reason)}"
end
end
@doc """
Adds the number of days to the given `date`.
The days are counted as Gregorian days. The date is returned in the same
calendar as it was given in.
## Examples
iex> Date.add(~D[2000-01-03], -2)
~D[2000-01-01]
iex> Date.add(~D[2000-01-01], 2)
~D[2000-01-03]
iex> Date.add(~N[2000-01-01 09:00:00], 2)
~D[2000-01-03]
iex> Date.add(~D[-0010-01-01], -2)
~D[-0011-12-30]
"""
@doc since: "1.5.0"
@spec add(Calendar.date(), integer()) :: t
def add(%{calendar: Calendar.ISO} = date, days) do
%{year: year, month: month, day: day} = date
{year, month, day} =
Calendar.ISO.date_to_iso_days(year, month, day)
|> Kernel.+(days)
|> Calendar.ISO.date_from_iso_days()
%Date{calendar: Calendar.ISO, year: year, month: month, day: day}
end
def add(%{calendar: calendar} = date, days) do
{base_days, fraction} = to_iso_days(date)
from_iso_days({base_days + days, fraction}, calendar)
end
@doc """
Calculates the difference between two dates, in a full number of days.
It returns the number of Gregorian days between the dates. Only `Date`
structs that follow the same or compatible calendars can be compared
this way. If two calendars are not compatible, it will raise.
## Examples
iex> Date.diff(~D[2000-01-03], ~D[2000-01-01])
2
iex> Date.diff(~D[2000-01-01], ~D[2000-01-03])
-2
iex> Date.diff(~D[0000-01-02], ~D[-0001-12-30])
3
iex> Date.diff(~D[2000-01-01], ~N[2000-01-03 09:00:00])
-2
"""
@doc since: "1.5.0"
@spec diff(Calendar.date(), Calendar.date()) :: integer
def diff(%{calendar: Calendar.ISO} = date1, %{calendar: Calendar.ISO} = date2) do
%{year: year1, month: month1, day: day1} = date1
%{year: year2, month: month2, day: day2} = date2
Calendar.ISO.date_to_iso_days(year1, month1, day1) -
Calendar.ISO.date_to_iso_days(year2, month2, day2)
end
def diff(%{calendar: calendar1} = date1, %{calendar: calendar2} = date2) do
if Calendar.compatible_calendars?(calendar1, calendar2) do
{days1, _} = to_iso_days(date1)
{days2, _} = to_iso_days(date2)
days1 - days2
else
raise ArgumentError,
"cannot calculate the difference between #{inspect(date1)} and #{inspect(date2)} because their calendars are not compatible and thus the result would be ambiguous"
end
end
defp to_iso_days(%{calendar: Calendar.ISO, year: year, month: month, day: day}) do
{Calendar.ISO.date_to_iso_days(year, month, day), {0, 86_400_000_000}}
end
defp to_iso_days(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.naive_datetime_to_iso_days(year, month, day, 0, 0, 0, {0, 0})
end
defp from_iso_days({days, _}, Calendar.ISO) do
{year, month, day} = Calendar.ISO.date_from_iso_days(days)
%Date{year: year, month: month, day: day, calendar: Calendar.ISO}
end
defp from_iso_days(iso_days, target_calendar) do
{year, month, day, _, _, _, _} = target_calendar.naive_datetime_from_iso_days(iso_days)
%Date{year: year, month: month, day: day, calendar: target_calendar}
end
@doc """
Calculates the day of the week of a given `date`.
Returns the day of the week as an integer. For the ISO 8601
calendar (the default), it is an integer from 1 to 7, where
1 is Monday and 7 is Sunday.
## Examples
iex> Date.day_of_week(~D[2016-10-31])
1
iex> Date.day_of_week(~D[2016-11-01])
2
iex> Date.day_of_week(~N[2016-11-01 01:23:45])
2
iex> Date.day_of_week(~D[-0015-10-30])
3
"""
@doc since: "1.4.0"
@spec day_of_week(Calendar.date()) :: Calendar.day()
def day_of_week(date)
def day_of_week(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.day_of_week(year, month, day)
end
@doc """
Calculates the day of the year of a given `date`.
Returns the day of the year as an integer. For the ISO 8601
calendar (the default), it is an integer from 1 to 366.
## Examples
iex> Date.day_of_year(~D[2016-01-01])
1
iex> Date.day_of_year(~D[2016-11-01])
306
iex> Date.day_of_year(~D[-0015-10-30])
303
iex> Date.day_of_year(~D[2004-12-31])
366
"""
@doc since: "1.8.0"
@spec day_of_year(Calendar.date()) :: Calendar.day()
def day_of_year(date)
def day_of_year(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.day_of_year(year, month, day)
end
@doc """
Calculates the quarter of the year of a given `date`.
Returns the day of the year as an integer. For the ISO 8601
calendar (the default), it is an integer from 1 to 4.
## Examples
iex> Date.quarter_of_year(~D[2016-10-31])
4
iex> Date.quarter_of_year(~D[2016-01-01])
1
iex> Date.quarter_of_year(~N[2016-04-01 01:23:45])
2
iex> Date.quarter_of_year(~D[-0015-09-30])
3
"""
@doc since: "1.8.0"
@spec quarter_of_year(Calendar.date()) :: non_neg_integer()
def quarter_of_year(date)
def quarter_of_year(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.quarter_of_year(year, month, day)
end
@doc """
Calculates the year-of-era and era for a given
calendar year.
Returns a tuple `{year, era}` representing the
year within the era and the era number.
## Examples
iex> Date.year_of_era(~D[0001-01-01])
{1, 1}
iex> Date.year_of_era(~D[0000-12-31])
{1, 0}
iex> Date.year_of_era(~D[-0001-01-01])
{2, 0}
"""
@doc since: "1.8.0"
@spec year_of_era(Calendar.date()) :: {Calendar.year(), non_neg_integer()}
def year_of_era(date)
def year_of_era(%{calendar: calendar, year: year}) do
calendar.year_of_era(year)
end
@doc """
Calculates the day-of-era and era for a given
calendar `date`.
Returns a tuple `{day, era}` representing the
day within the era and the era number.
## Examples
iex> Date.day_of_era(~D[0001-01-01])
{1, 1}
iex> Date.day_of_era(~D[0000-12-31])
{1, 0}
"""
@doc since: "1.8.0"
@spec day_of_era(Calendar.date()) :: {Calendar.day(), non_neg_integer()}
def day_of_era(date)
def day_of_era(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.day_of_era(year, month, day)
end
## Helpers
defimpl String.Chars do
def to_string(%{calendar: calendar, year: year, month: month, day: day}) do
calendar.date_to_string(year, month, day)
end
end
defimpl Inspect do
def inspect(%{calendar: Calendar.ISO, year: year, month: month, day: day}, _) do
"~D[" <> Calendar.ISO.date_to_string(year, month, day) <> "]"
end
def inspect(date, opts) do
Inspect.Any.inspect(date, opts)
end
end
end
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defmodule Date.Range do
@moduledoc """
Returns an inclusive range between dates.
Ranges must be created with the `Date.range/2` function.
The following fields are public:
* `:first` - the initial date on the range
* `:last` - the last date on the range
The remaining fields are private and should not be accessed.
"""
@type t :: %__MODULE__{
first: Date.t(),
last: Date.t(),
first_in_iso_days: iso_days(),
last_in_iso_days: iso_days()
}
@typep iso_days() :: Calendar.iso_days()
defstruct [:first, :last, :first_in_iso_days, :last_in_iso_days]
defimpl Enumerable do
def member?(%{first: %{calendar: calendar}} = range, %Date{calendar: calendar} = date) do
%{
first: first,
last: last,
first_in_iso_days: first_in_iso_days,
last_in_iso_days: last_in_iso_days
} = range
%{year: first_year, month: first_month, day: first_day} = first
%{year: last_year, month: last_month, day: last_day} = last
%{year: year, month: month, day: day} = date
first = {first_year, first_month, first_day}
last = {last_year, last_month, last_day}
date = {year, month, day}
if first_in_iso_days <= last_in_iso_days do
{:ok, date >= first and date <= last}
else
{:ok, date >= last and date <= first}
end
end
def member?(_, _) do
{:ok, false}
end
def count(%{first_in_iso_days: first, last_in_iso_days: last}) do
{:ok, abs(first - last) + 1}
end
def slice(range) do
%{
first_in_iso_days: first,
last_in_iso_days: last,
first: %{calendar: calendar}
} = range
if first <= last do
{:ok, last - first + 1, &slice_asc(first + &1, &2, calendar)}
else
{:ok, first - last + 1, &slice_desc(first - &1, &2, calendar)}
end
end
defp slice_asc(current, 1, calendar), do: [date_from_iso_days(current, calendar)]
defp slice_asc(current, remaining, calendar) do
[date_from_iso_days(current, calendar) | slice_asc(current + 1, remaining - 1, calendar)]
end
defp slice_desc(current, 1, calendar), do: [date_from_iso_days(current, calendar)]
defp slice_desc(current, remaining, calendar) do
[date_from_iso_days(current, calendar) | slice_desc(current - 1, remaining - 1, calendar)]
end
def reduce(range, acc, fun) do
%{
first_in_iso_days: first_in_iso_days,
last_in_iso_days: last_in_iso_days,
first: %{calendar: calendar}
} = range
up? = first_in_iso_days <= last_in_iso_days
reduce(first_in_iso_days, last_in_iso_days, acc, fun, calendar, up?)
end
defp reduce(_x, _y, {:halt, acc}, _fun, _calendar, _up?) do
{:halted, acc}
end
defp reduce(x, y, {:suspend, acc}, fun, calendar, up?) do
{:suspended, acc, &reduce(x, y, &1, fun, calendar, up?)}
end
defp reduce(x, y, {:cont, acc}, fun, calendar, up? = true) when x <= y do
reduce(x + 1, y, fun.(date_from_iso_days(x, calendar), acc), fun, calendar, up?)
end
defp reduce(x, y, {:cont, acc}, fun, calendar, up? = false) when x >= y do
reduce(x - 1, y, fun.(date_from_iso_days(x, calendar), acc), fun, calendar, up?)
end
defp reduce(_, _, {:cont, acc}, _fun, _calendar, _up) do
{:done, acc}
end
defp date_from_iso_days(days, Calendar.ISO) do
{year, month, day} = Calendar.ISO.date_from_iso_days(days)
%Date{year: year, month: month, day: day, calendar: Calendar.ISO}
end
defp date_from_iso_days(days, calendar) do
{year, month, day, _, _, _, _} =
calendar.naive_datetime_from_iso_days({days, {0, 86_400_000_000}})
%Date{year: year, month: month, day: day, calendar: calendar}
end
end
defimpl Inspect do
def inspect(%Date.Range{first: first, last: last}, _) do
"#DateRange<" <> inspect(first) <> ", " <> inspect(last) <> ">"
end
end
end
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defmodule NaiveDateTime do
@moduledoc """
A NaiveDateTime struct (without a time zone) and functions.
The NaiveDateTime struct contains the fields year, month, day, hour,
minute, second, microsecond and calendar. New naive datetimes can be
built with the `new/2` and `new/8` functions or using the
`~N` (see `Kernel.sigil_N/2`) sigil:
iex> ~N[2000-01-01 23:00:07]
~N[2000-01-01 23:00:07]
The date and time fields in the struct can be accessed directly:
iex> naive = ~N[2000-01-01 23:00:07]
iex> naive.year
2000
iex> naive.second
7
We call them "naive" because this datetime representation does not
have a time zone. This means the datetime may not actually exist in
certain areas in the world even though it is valid.
For example, when daylight saving changes are applied by a region,
the clock typically moves forward or backward by one hour. This means
certain datetimes never occur or may occur more than once. Since
`NaiveDateTime` is not validated against a time zone, such errors
would go unnoticed.
Developers should avoid creating the NaiveDateTime structs directly
and instead, rely on the functions provided by this module as well
as the ones in third-party calendar libraries.
## Comparing naive date times
Comparisons in Elixir using `==/2`, `>/2`, `</2` and similar are structural
and based on the `NaiveDateTime` struct fields. For proper comparison
between naive datetimes, use the `compare/2` function.
## Using epochs
The `add/3` and `diff/3` functions can be used for computing with
date times or retrieving the number of seconds between instants.
For example, if there is an interest in computing the number of
seconds from the Unix epoch (1970-01-01 00:00:00):
iex> NaiveDateTime.diff(~N[2010-04-17 14:00:00], ~N[1970-01-01 00:00:00])
1271512800
iex> NaiveDateTime.add(~N[1970-01-01 00:00:00], 1_271_512_800)
~N[2010-04-17 14:00:00]
Those functions are optimized to deal with common epochs, such
as the Unix Epoch above or the Gregorian Epoch (0000-01-01 00:00:00).
"""
@enforce_keys [:year, :month, :day, :hour, :minute, :second]
defstruct [
:year,
:month,
:day,
:hour,
:minute,
:second,
microsecond: {0, 0},
calendar: Calendar.ISO
]
@type t :: %__MODULE__{
year: Calendar.year(),
month: Calendar.month(),
day: Calendar.day(),
calendar: Calendar.calendar(),
hour: Calendar.hour(),
minute: Calendar.minute(),
second: Calendar.second(),
microsecond: Calendar.microsecond()
}
@doc """
Returns the current naive datetime in UTC.
Prefer using `DateTime.utc_now/0` when possible as, opposite
to `NaiveDateTime`, it will keep the time zone information.
## Examples
iex> naive_datetime = NaiveDateTime.utc_now()
iex> naive_datetime.year >= 2016
true
"""
@doc since: "1.4.0"
@spec utc_now(Calendar.calendar()) :: t
def utc_now(calendar \\ Calendar.ISO)
def utc_now(Calendar.ISO) do
{:ok, {year, month, day}, {hour, minute, second}, microsecond} =
Calendar.ISO.from_unix(:os.system_time(), :native)
%NaiveDateTime{
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: Calendar.ISO
}
end
def utc_now(calendar) do
calendar
|> DateTime.utc_now()
|> DateTime.to_naive()
end
@doc """
Builds a new ISO naive datetime.
Expects all values to be integers. Returns `{:ok, naive_datetime}`
if each entry fits its appropriate range, returns `{:error, reason}`
otherwise.
## Examples
iex> NaiveDateTime.new(2000, 1, 1, 0, 0, 0)
{:ok, ~N[2000-01-01 00:00:00]}
iex> NaiveDateTime.new(2000, 13, 1, 0, 0, 0)
{:error, :invalid_date}
iex> NaiveDateTime.new(2000, 2, 29, 0, 0, 0)
{:ok, ~N[2000-02-29 00:00:00]}
iex> NaiveDateTime.new(2000, 2, 30, 0, 0, 0)
{:error, :invalid_date}
iex> NaiveDateTime.new(2001, 2, 29, 0, 0, 0)
{:error, :invalid_date}
iex> NaiveDateTime.new(2000, 1, 1, 23, 59, 59, {0, 1})
{:ok, ~N[2000-01-01 23:59:59.0]}
iex> NaiveDateTime.new(2000, 1, 1, 23, 59, 59, 999_999)
{:ok, ~N[2000-01-01 23:59:59.999999]}
iex> NaiveDateTime.new(2000, 1, 1, 24, 59, 59, 999_999)
{:error, :invalid_time}
iex> NaiveDateTime.new(2000, 1, 1, 23, 60, 59, 999_999)
{:error, :invalid_time}
iex> NaiveDateTime.new(2000, 1, 1, 23, 59, 60, 999_999)
{:error, :invalid_time}
iex> NaiveDateTime.new(2000, 1, 1, 23, 59, 59, 1_000_000)
{:error, :invalid_time}
iex> NaiveDateTime.new(2000, 1, 1, 23, 59, 59, {0, 1}, Calendar.ISO)
{:ok, ~N[2000-01-01 23:59:59.0]}
"""
@spec new(
Calendar.year(),
Calendar.month(),
Calendar.day(),
Calendar.hour(),
Calendar.minute(),
Calendar.second(),
Calendar.microsecond(),
Calendar.calendar()
) :: {:ok, t} | {:error, atom}
def new(year, month, day, hour, minute, second, microsecond \\ {0, 0}, calendar \\ Calendar.ISO)
def new(year, month, day, hour, minute, second, microsecond, calendar)
when is_integer(microsecond) do
new(year, month, day, hour, minute, second, {microsecond, 6}, calendar)
end
def new(year, month, day, hour, minute, second, microsecond, calendar) do
cond do
not calendar.valid_date?(year, month, day) ->
{:error, :invalid_date}
not calendar.valid_time?(hour, minute, second, microsecond) ->
{:error, :invalid_time}
true ->
naive_datetime = %NaiveDateTime{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
{:ok, naive_datetime}
end
end
@doc """
Builds a naive datetime from date and time structs.
## Examples
iex> NaiveDateTime.new(~D[2010-01-13], ~T[23:00:07.005])
{:ok, ~N[2010-01-13 23:00:07.005]}
"""
@spec new(Date.t(), Time.t()) :: {:ok, t}
def new(date, time)
def new(%Date{calendar: calendar} = date, %Time{calendar: calendar} = time) do
%{year: year, month: month, day: day} = date
%{hour: hour, minute: minute, second: second, microsecond: microsecond} = time
naive_datetime = %NaiveDateTime{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
{:ok, naive_datetime}
end
@doc """
Adds a specified amount of time to a `NaiveDateTime`.
Accepts an `amount_to_add` in any `unit` available from `t:System.time_unit/0`.
Negative values will move backwards in time.
## Examples
# adds seconds by default
iex> NaiveDateTime.add(~N[2014-10-02 00:29:10], 2)
~N[2014-10-02 00:29:12]
# accepts negative offsets
iex> NaiveDateTime.add(~N[2014-10-02 00:29:10], -2)
~N[2014-10-02 00:29:08]
# can work with other units
iex> NaiveDateTime.add(~N[2014-10-02 00:29:10], 2_000, :millisecond)
~N[2014-10-02 00:29:12]
# keeps the same precision
iex> NaiveDateTime.add(~N[2014-10-02 00:29:10.021], 21, :second)
~N[2014-10-02 00:29:31.021]
# changes below the precision will not be visible
iex> hidden = NaiveDateTime.add(~N[2014-10-02 00:29:10], 21, :millisecond)
iex> hidden.microsecond # ~N[2014-10-02 00:29:10]
{21000, 0}
# from Gregorian seconds
iex> NaiveDateTime.add(~N[0000-01-01 00:00:00], 63_579_428_950)
~N[2014-10-02 00:29:10]
Passing a `DateTime` automatically converts it to `NaiveDateTime`,
discarding the time zone information:
iex> dt = %DateTime{year: 2000, month: 2, day: 29, zone_abbr: "CET",
...> hour: 23, minute: 0, second: 7, microsecond: {0, 0},
...> utc_offset: 3600, std_offset: 0, time_zone: "Europe/Warsaw"}
iex> NaiveDateTime.add(dt, 21, :second)
~N[2000-02-29 23:00:28]
"""
@doc since: "1.4.0"
@spec add(Calendar.naive_datetime(), integer, System.time_unit()) :: t
def add(
%{microsecond: {_, precision}, calendar: calendar} = naive_datetime,
amount_to_add,
unit \\ :second
)
when is_integer(amount_to_add) do
ppd = System.convert_time_unit(86400, :second, unit)
naive_datetime
|> to_iso_days()
|> Calendar.ISO.add_day_fraction_to_iso_days(amount_to_add, ppd)
|> from_iso_days(calendar, precision)
end
@doc """
Subtracts `naive_datetime2` from `naive_datetime1`.
The answer can be returned in any `unit` available from `t:System.time_unit/0`.
This function returns the difference in seconds where seconds are measured
according to `Calendar.ISO`.
## Examples
iex> NaiveDateTime.diff(~N[2014-10-02 00:29:12], ~N[2014-10-02 00:29:10])
2
iex> NaiveDateTime.diff(~N[2014-10-02 00:29:12], ~N[2014-10-02 00:29:10], :microsecond)
2_000_000
iex> NaiveDateTime.diff(~N[2014-10-02 00:29:10.042], ~N[2014-10-02 00:29:10.021], :millisecond)
21
iex> NaiveDateTime.diff(~N[2014-10-02 00:29:10], ~N[2014-10-02 00:29:12])
-2
iex> NaiveDateTime.diff(~N[-0001-10-02 00:29:10], ~N[-0001-10-02 00:29:12])
-2
# to Gregorian seconds
iex> NaiveDateTime.diff(~N[2014-10-02 00:29:10], ~N[0000-01-01 00:00:00])
63579428950
"""
@doc since: "1.4.0"
@spec diff(Calendar.naive_datetime(), Calendar.naive_datetime(), System.time_unit()) :: integer
def diff(
%{calendar: calendar1} = naive_datetime1,
%{calendar: calendar2} = naive_datetime2,
unit \\ :second
) do
if not Calendar.compatible_calendars?(calendar1, calendar2) do
raise ArgumentError,
"cannot calculate the difference between #{inspect(naive_datetime1)} and " <>
"#{inspect(naive_datetime2)} because their calendars are not compatible " <>
"and thus the result would be ambiguous"
end
units1 = naive_datetime1 |> to_iso_days() |> Calendar.ISO.iso_days_to_unit(unit)
units2 = naive_datetime2 |> to_iso_days() |> Calendar.ISO.iso_days_to_unit(unit)
units1 - units2
end
@doc """
Returns the given naive datetime with the microsecond field truncated to the
given precision (`:microsecond`, `:millisecond` or `:second`).
The given naive datetime is returned unchanged if it already has lower precision
than the given precision.
## Examples
iex> NaiveDateTime.truncate(~N[2017-11-06 00:23:51.123456], :microsecond)
~N[2017-11-06 00:23:51.123456]
iex> NaiveDateTime.truncate(~N[2017-11-06 00:23:51.123456], :millisecond)
~N[2017-11-06 00:23:51.123]
iex> NaiveDateTime.truncate(~N[2017-11-06 00:23:51.123456], :second)
~N[2017-11-06 00:23:51]
"""
@doc since: "1.6.0"
@spec truncate(t(), :microsecond | :millisecond | :second) :: t()
def truncate(%NaiveDateTime{microsecond: microsecond} = naive_datetime, precision) do
%{naive_datetime | microsecond: Calendar.truncate(microsecond, precision)}
end
def truncate(
%{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
},
precision
) do
%NaiveDateTime{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: Calendar.truncate(microsecond, precision)
}
end
@doc """
Converts a `NaiveDateTime` into a `Date`.
Because `Date` does not hold time information,
data will be lost during the conversion.
## Examples
iex> NaiveDateTime.to_date(~N[2002-01-13 23:00:07])
~D[2002-01-13]
"""
@spec to_date(Calendar.naive_datetime()) :: Date.t()
def to_date(%{
year: year,
month: month,
day: day,
calendar: calendar,
hour: _,
minute: _,
second: _,
microsecond: _
}) do
%Date{year: year, month: month, day: day, calendar: calendar}
end
@doc """
Converts a `NaiveDateTime` into `Time`.
Because `Time` does not hold date information,
data will be lost during the conversion.
## Examples
iex> NaiveDateTime.to_time(~N[2002-01-13 23:00:07])
~T[23:00:07]
"""
@spec to_time(Calendar.naive_datetime()) :: Time.t()
def to_time(%{
year: _,
month: _,
day: _,
calendar: calendar,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}) do
%Time{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: calendar
}
end
@doc """
Converts the given naive datetime to a string according to its calendar.
### Examples
iex> NaiveDateTime.to_string(~N[2000-02-28 23:00:13])
"2000-02-28 23:00:13"
iex> NaiveDateTime.to_string(~N[2000-02-28 23:00:13.001])
"2000-02-28 23:00:13.001"
iex> NaiveDateTime.to_string(~N[-0100-12-15 03:20:31])
"-0100-12-15 03:20:31"
This function can also be used to convert a DateTime to a string without
the time zone information:
iex> dt = %DateTime{year: 2000, month: 2, day: 29, zone_abbr: "CET",
...> hour: 23, minute: 0, second: 7, microsecond: {0, 0},
...> utc_offset: 3600, std_offset: 0, time_zone: "Europe/Warsaw"}
iex> NaiveDateTime.to_string(dt)
"2000-02-29 23:00:07"
"""
@spec to_string(Calendar.naive_datetime()) :: String.t()
def to_string(%{calendar: calendar} = naive_datetime) do
%{
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
} = naive_datetime
calendar.naive_datetime_to_string(year, month, day, hour, minute, second, microsecond)
end
@doc """
Parses the extended "Date and time of day" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
Time zone offset may be included in the string but they will be
simply discarded as such information is not included in naive date
times.
As specified in the standard, the separator "T" may be omitted if
desired as there is no ambiguity within this function.
The year parsed by this function is limited to four digits and,
while ISO 8601 allows datetimes to specify 24:00:00 as the zero
hour of the next day, this notation is not supported by Elixir.
Note leap seconds are not supported by the built-in Calendar.ISO.
## Examples
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:07")
{:ok, ~N[2015-01-23 23:50:07]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07")
{:ok, ~N[2015-01-23 23:50:07]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07Z")
{:ok, ~N[2015-01-23 23:50:07]}
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:07.0")
{:ok, ~N[2015-01-23 23:50:07.0]}
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:07,0123456")
{:ok, ~N[2015-01-23 23:50:07.012345]}
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:07.0123456")
{:ok, ~N[2015-01-23 23:50:07.012345]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123Z")
{:ok, ~N[2015-01-23 23:50:07.123]}
iex> NaiveDateTime.from_iso8601("2015-01-23P23:50:07")
{:error, :invalid_format}
iex> NaiveDateTime.from_iso8601("2015:01:23 23-50-07")
{:error, :invalid_format}
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:07A")
{:error, :invalid_format}
iex> NaiveDateTime.from_iso8601("2015-01-23 23:50:61")
{:error, :invalid_time}
iex> NaiveDateTime.from_iso8601("2015-01-32 23:50:07")
{:error, :invalid_date}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123+02:30")
{:ok, ~N[2015-01-23 23:50:07.123]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123+00:00")
{:ok, ~N[2015-01-23 23:50:07.123]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123-02:30")
{:ok, ~N[2015-01-23 23:50:07.123]}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123-00:00")
{:error, :invalid_format}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123-00:60")
{:error, :invalid_format}
iex> NaiveDateTime.from_iso8601("2015-01-23T23:50:07.123-24:00")
{:error, :invalid_format}
"""
@spec from_iso8601(String.t(), Calendar.calendar()) :: {:ok, t} | {:error, atom}
def from_iso8601(string, calendar \\ Calendar.ISO)
def from_iso8601(<<?-, rest::binary>>, calendar) do
with {:ok, %{year: year} = naive_datetime} <- raw_from_iso8601(rest, calendar) do
{:ok, %{naive_datetime | year: -year}}
end
end
def from_iso8601(<<rest::binary>>, calendar) do
raw_from_iso8601(rest, calendar)
end
@sep [?\s, ?T]
[match_date, guard_date, read_date] = Calendar.ISO.__match_date__()
[match_time, guard_time, read_time] = Calendar.ISO.__match_time__()
defp raw_from_iso8601(string, calendar) do
with <<unquote(match_date), sep, unquote(match_time), rest::binary>> <- string,
true <- unquote(guard_date) and sep in @sep and unquote(guard_time),
{microsec, rest} <- Calendar.ISO.parse_microsecond(rest),
{_offset, ""} <- Calendar.ISO.parse_offset(rest) do
{year, month, day} = unquote(read_date)
{hour, min, sec} = unquote(read_time)
with {:ok, iso_naive_dt} <- new(year, month, day, hour, min, sec, microsec, Calendar.ISO) do
convert(iso_naive_dt, calendar)
end
else
_ -> {:error, :invalid_format}
end
end
@doc """
Parses the extended "Date and time of day" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
Raises if the format is invalid.
## Examples
iex> NaiveDateTime.from_iso8601!("2015-01-23T23:50:07.123Z")
~N[2015-01-23 23:50:07.123]
iex> NaiveDateTime.from_iso8601!("2015-01-23T23:50:07,123Z")
~N[2015-01-23 23:50:07.123]
iex> NaiveDateTime.from_iso8601!("2015-01-23P23:50:07")
** (ArgumentError) cannot parse "2015-01-23P23:50:07" as naive datetime, reason: :invalid_format
"""
@spec from_iso8601!(String.t(), Calendar.calendar()) :: t
def from_iso8601!(string, calendar \\ Calendar.ISO) do
case from_iso8601(string, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot parse #{inspect(string)} as naive datetime, reason: #{inspect(reason)}"
end
end
@doc """
Converts the given naive datetime to
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
By default, `NaiveDateTime.to_iso8601/2` returns naive datetimes formatted in the "extended"
format, for human readability. It also supports the "basic" format through passing the `:basic` option.
Only supports converting naive datetimes which are in the ISO calendar,
attempting to convert naive datetimes from other calendars will raise.
### Examples
iex> NaiveDateTime.to_iso8601(~N[2000-02-28 23:00:13])
"2000-02-28T23:00:13"
iex> NaiveDateTime.to_iso8601(~N[2000-02-28 23:00:13.001])
"2000-02-28T23:00:13.001"
iex> NaiveDateTime.to_iso8601(~N[2000-02-28 23:00:13.001], :basic)
"20000228T230013.001"
This function can also be used to convert a DateTime to ISO 8601 without
the time zone information:
iex> dt = %DateTime{year: 2000, month: 2, day: 29, zone_abbr: "CET",
...> hour: 23, minute: 0, second: 7, microsecond: {0, 0},
...> utc_offset: 3600, std_offset: 0, time_zone: "Europe/Warsaw"}
iex> NaiveDateTime.to_iso8601(dt)
"2000-02-29T23:00:07"
"""
@spec to_iso8601(Calendar.naive_datetime(), :basic | :extended) :: String.t()
def to_iso8601(naive_datetime, format \\ :extended)
def to_iso8601(%{calendar: Calendar.ISO} = naive_datetime, format)
when format in [:basic, :extended] do
%{
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
} = naive_datetime
Calendar.ISO.naive_datetime_to_iso8601(
year,
month,
day,
hour,
minute,
second,
microsecond,
format
)
end
def to_iso8601(%{calendar: _} = naive_datetime, format) when format in [:basic, :extended] do
naive_datetime
|> convert!(Calendar.ISO)
|> to_iso8601(format)
end
@doc """
Converts a `NaiveDateTime` struct to an Erlang datetime tuple.
Only supports converting naive datetimes which are in the ISO calendar,
attempting to convert naive datetimes from other calendars will raise.
WARNING: Loss of precision may occur, as Erlang time tuples only store
hour/minute/second.
## Examples
iex> NaiveDateTime.to_erl(~N[2000-01-01 13:30:15])
{{2000, 1, 1}, {13, 30, 15}}
This function can also be used to convert a DateTime to a erl format
without the time zone information:
iex> dt = %DateTime{year: 2000, month: 2, day: 29, zone_abbr: "CET",
...> hour: 23, minute: 0, second: 7, microsecond: {0, 0},
...> utc_offset: 3600, std_offset: 0, time_zone: "Europe/Warsaw"}
iex> NaiveDateTime.to_erl(dt)
{{2000, 2, 29}, {23, 00, 07}}
"""
@spec to_erl(Calendar.naive_datetime()) :: :calendar.datetime()
def to_erl(%{calendar: _} = naive_datetime) do
%{year: year, month: month, day: day, hour: hour, minute: minute, second: second} =
convert!(naive_datetime, Calendar.ISO)
{{year, month, day}, {hour, minute, second}}
end
@doc """
Converts an Erlang datetime tuple to a `NaiveDateTime` struct.
Attempting to convert an invalid ISO calendar date will produce an error tuple.
## Examples
iex> NaiveDateTime.from_erl({{2000, 1, 1}, {13, 30, 15}})
{:ok, ~N[2000-01-01 13:30:15]}
iex> NaiveDateTime.from_erl({{2000, 1, 1}, {13, 30, 15}}, {5000, 3})
{:ok, ~N[2000-01-01 13:30:15.005]}
iex> NaiveDateTime.from_erl({{2000, 13, 1}, {13, 30, 15}})
{:error, :invalid_date}
iex> NaiveDateTime.from_erl({{2000, 13, 1}, {13, 30, 15}})
{:error, :invalid_date}
"""
@spec from_erl(:calendar.datetime(), Calendar.microsecond(), Calendar.calendar()) ::
{:ok, t} | {:error, atom}
def from_erl(tuple, microsecond \\ {0, 0}, calendar \\ Calendar.ISO)
def from_erl({{year, month, day}, {hour, minute, second}}, microsecond, calendar) do
with {:ok, iso_naive_dt} <- new(year, month, day, hour, minute, second, microsecond),
do: convert(iso_naive_dt, calendar)
end
@doc """
Converts an Erlang datetime tuple to a `NaiveDateTime` struct.
Raises if the datetime is invalid.
Attempting to convert an invalid ISO calendar date will produce an error tuple.
## Examples
iex> NaiveDateTime.from_erl!({{2000, 1, 1}, {13, 30, 15}})
~N[2000-01-01 13:30:15]
iex> NaiveDateTime.from_erl!({{2000, 1, 1}, {13, 30, 15}}, {5000, 3})
~N[2000-01-01 13:30:15.005]
iex> NaiveDateTime.from_erl!({{2000, 13, 1}, {13, 30, 15}})
** (ArgumentError) cannot convert {{2000, 13, 1}, {13, 30, 15}} to naive datetime, reason: :invalid_date
"""
@spec from_erl!(:calendar.datetime(), Calendar.microsecond(), Calendar.calendar()) :: t
def from_erl!(tuple, microsecond \\ {0, 0}, calendar \\ Calendar.ISO) do
case from_erl(tuple, microsecond, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot convert #{inspect(tuple)} to naive datetime, reason: #{inspect(reason)}"
end
end
@doc """
Compares two `NaiveDateTime` structs.
Returns `:gt` if first is later than the second
and `:lt` for vice versa. If the two NaiveDateTime
are equal `:eq` is returned.
## Examples
iex> NaiveDateTime.compare(~N[2016-04-16 13:30:15], ~N[2016-04-28 16:19:25])
:lt
iex> NaiveDateTime.compare(~N[2016-04-16 13:30:15.1], ~N[2016-04-16 13:30:15.01])
:gt
This function can also be used to compare a DateTime without
the time zone information:
iex> dt = %DateTime{year: 2000, month: 2, day: 29, zone_abbr: "CET",
...> hour: 23, minute: 0, second: 7, microsecond: {0, 0},
...> utc_offset: 3600, std_offset: 0, time_zone: "Europe/Warsaw"}
iex> NaiveDateTime.compare(dt, ~N[2000-02-29 23:00:07])
:eq
iex> NaiveDateTime.compare(dt, ~N[2000-01-29 23:00:07])
:gt
iex> NaiveDateTime.compare(dt, ~N[2000-03-29 23:00:07])
:lt
"""
@doc since: "1.4.0"
@spec compare(Calendar.naive_datetime(), Calendar.naive_datetime()) :: :lt | :eq | :gt
def compare(%{calendar: calendar1} = naive_datetime1, %{calendar: calendar2} = naive_datetime2) do
if Calendar.compatible_calendars?(calendar1, calendar2) do
case {to_iso_days(naive_datetime1), to_iso_days(naive_datetime2)} do
{first, second} when first > second -> :gt
{first, second} when first < second -> :lt
_ -> :eq
end
else
raise ArgumentError, """
cannot compare #{inspect(naive_datetime1)} with #{inspect(naive_datetime2)}.
This comparison would be ambiguous as their calendars have incompatible day rollover moments.
Specify an exact time of day (using `DateTime`s) to resolve this ambiguity
"""
end
end
@doc """
Converts the given `naive_datetime` from one calendar to another.
If it is not possible to convert unambiguously between the calendars
(see `Calendar.compatible_calendars?/2`), an `{:error, :incompatible_calendars}` tuple
is returned.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> NaiveDateTime.convert(~N[2000-01-01 13:30:15], Calendar.Holocene)
{:ok, %NaiveDateTime{calendar: Calendar.Holocene, year: 12000, month: 1, day: 1,
hour: 13, minute: 30, second: 15, microsecond: {0, 0}}}
"""
@doc since: "1.5.0"
@spec convert(Calendar.naive_datetime(), Calendar.calendar()) ::
{:ok, t} | {:error, :incompatible_calendars}
# Keep it multiline for proper function clause errors.
def convert(
%{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
},
calendar
) do
naive_datetime = %NaiveDateTime{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
{:ok, naive_datetime}
end
def convert(%{calendar: ndt_calendar, microsecond: {_, precision}} = naive_datetime, calendar) do
if Calendar.compatible_calendars?(ndt_calendar, calendar) do
result_naive_datetime =
naive_datetime
|> to_iso_days
|> from_iso_days(calendar, precision)
{:ok, result_naive_datetime}
else
{:error, :incompatible_calendars}
end
end
@doc """
Converts the given `naive_datetime` from one calendar to another.
If it is not possible to convert unambiguously between the calendars
(see `Calendar.compatible_calendars?/2`), an ArgumentError is raised.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> NaiveDateTime.convert!(~N[2000-01-01 13:30:15], Calendar.Holocene)
%NaiveDateTime{calendar: Calendar.Holocene, year: 12000, month: 1, day: 1,
hour: 13, minute: 30, second: 15, microsecond: {0, 0}}
"""
@doc since: "1.5.0"
@spec convert!(Calendar.naive_datetime(), Calendar.calendar()) :: t
def convert!(naive_datetime, calendar) do
case convert(naive_datetime, calendar) do
{:ok, value} ->
value
{:error, :incompatible_calendars} ->
raise ArgumentError,
"cannot convert #{inspect(naive_datetime)} to target calendar #{inspect(calendar)}, " <>
"reason: #{inspect(naive_datetime.calendar)} and #{inspect(calendar)} " <>
"have different day rollover moments, making this conversion ambiguous"
end
end
## Helpers
# Keep it multiline for proper function clause errors.
defp to_iso_days(%{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}) do
calendar.naive_datetime_to_iso_days(year, month, day, hour, minute, second, microsecond)
end
defp from_iso_days(iso_days, calendar, precision) do
{year, month, day, hour, minute, second, {microsecond, _}} =
calendar.naive_datetime_from_iso_days(iso_days)
%NaiveDateTime{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: {microsecond, precision}
}
end
defimpl String.Chars do
def to_string(naive_datetime) do
%{
calendar: calendar,
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
} = naive_datetime
calendar.naive_datetime_to_string(year, month, day, hour, minute, second, microsecond)
end
end
defimpl Inspect do
def inspect(%{calendar: Calendar.ISO} = naive_datetime, _) do
%{
year: year,
month: month,
day: day,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
} = naive_datetime
formatted =
Calendar.ISO.naive_datetime_to_string(year, month, day, hour, minute, second, microsecond)
"~N[" <> formatted <> "]"
end
def inspect(naive, opts) do
Inspect.Any.inspect(naive, opts)
end
end
end
-712
View File
@@ -1,712 +0,0 @@
defmodule Time do
@moduledoc """
A Time struct and functions.
The Time struct contains the fields hour, minute, second and microseconds.
New times can be built with the `new/4` function or using the
`~T` (see `Kernel.sigil_T/2`) sigil:
iex> ~T[23:00:07.001]
~T[23:00:07.001]
Both `new/4` and sigil return a struct where the time fields can
be accessed directly:
iex> time = ~T[23:00:07.001]
iex> time.hour
23
iex> time.microsecond
{1000, 3}
The functions on this module work with the `Time` struct as well
as any struct that contains the same fields as the `Time` struct,
such as `NaiveDateTime` and `DateTime`. Such functions expect
`t:Calendar.time/0` in their typespecs (instead of `t:t/0`).
Developers should avoid creating the Time structs directly
and instead rely on the functions provided by this module as well
as the ones in third-party calendar libraries.
## Comparing times
Comparisons in Elixir using `==/2`, `>/2`, `</2` and similar are structural
and based on the `Time` struct fields. For proper comparison between
times, use the `compare/2` function.
"""
@enforce_keys [:hour, :minute, :second]
defstruct [:hour, :minute, :second, microsecond: {0, 0}, calendar: Calendar.ISO]
@type t :: %__MODULE__{
hour: Calendar.hour(),
minute: Calendar.minute(),
second: Calendar.second(),
microsecond: Calendar.microsecond(),
calendar: Calendar.calendar()
}
@parts_per_day 86_400_000_000
@doc """
Returns the current time in UTC.
## Examples
iex> time = Time.utc_now()
iex> time.hour >= 0
true
"""
@doc since: "1.4.0"
@spec utc_now(Calendar.calendar()) :: t
def utc_now(calendar \\ Calendar.ISO) do
{:ok, _, time, microsecond} = Calendar.ISO.from_unix(:os.system_time(), :native)
{hour, minute, second} = time
iso_time = %Time{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: Calendar.ISO
}
convert!(iso_time, calendar)
end
@doc """
Builds a new time.
Expects all values to be integers. Returns `{:ok, time}` if each
entry fits its appropriate range, returns `{:error, reason}` otherwise.
Microseconds can also be given with a precision, which must be an
integer between 0 and 6.
The built-in calendar does not support leap seconds.
## Examples
iex> Time.new(0, 0, 0, 0)
{:ok, ~T[00:00:00.000000]}
iex> Time.new(23, 59, 59, 999_999)
{:ok, ~T[23:59:59.999999]}
iex> Time.new(24, 59, 59, 999_999)
{:error, :invalid_time}
iex> Time.new(23, 60, 59, 999_999)
{:error, :invalid_time}
iex> Time.new(23, 59, 60, 999_999)
{:error, :invalid_time}
iex> Time.new(23, 59, 59, 1_000_000)
{:error, :invalid_time}
# Invalid precision
Time.new(23, 59, 59, {999_999, 10})
{:error, :invalid_time}
"""
@spec new(
Calendar.hour(),
Calendar.minute(),
Calendar.second(),
Calendar.microsecond() | integer,
Calendar.calendar()
) :: {:ok, t} | {:error, atom}
def new(hour, minute, second, microsecond \\ {0, 0}, calendar \\ Calendar.ISO)
def new(hour, minute, second, microsecond, calendar) when is_integer(microsecond) do
new(hour, minute, second, {microsecond, 6}, calendar)
end
def new(hour, minute, second, {microsecond, precision}, calendar)
when is_integer(hour) and is_integer(minute) and is_integer(second) and
is_integer(microsecond) and is_integer(precision) do
case calendar.valid_time?(hour, minute, second, {microsecond, precision}) do
true ->
time = %Time{
hour: hour,
minute: minute,
second: second,
microsecond: {microsecond, precision},
calendar: calendar
}
{:ok, time}
false ->
{:error, :invalid_time}
end
end
@doc """
Converts the given `time` to a string.
### Examples
iex> Time.to_string(~T[23:00:00])
"23:00:00"
iex> Time.to_string(~T[23:00:00.001])
"23:00:00.001"
iex> Time.to_string(~T[23:00:00.123456])
"23:00:00.123456"
iex> Time.to_string(~N[2015-01-01 23:00:00.001])
"23:00:00.001"
iex> Time.to_string(~N[2015-01-01 23:00:00.123456])
"23:00:00.123456"
"""
@spec to_string(Calendar.time()) :: String.t()
def to_string(time)
def to_string(%{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: calendar
}) do
calendar.time_to_string(hour, minute, second, microsecond)
end
@doc """
Parses the extended "Local time" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
Time zone offset may be included in the string but they will be
simply discarded as such information is not included in times.
As specified in the standard, the separator "T" may be omitted if
desired as there is no ambiguity within this function.
Time representations with reduced accuracy are not supported.
Note that while ISO 8601 allows times to specify 24:00:00 as the
zero hour of the next day, this notation is not supported by Elixir.
Leap seconds are not supported as well by the built-in Calendar.ISO.
## Examples
iex> Time.from_iso8601("23:50:07")
{:ok, ~T[23:50:07]}
iex> Time.from_iso8601("23:50:07Z")
{:ok, ~T[23:50:07]}
iex> Time.from_iso8601("T23:50:07Z")
{:ok, ~T[23:50:07]}
iex> Time.from_iso8601("23:50:07,0123456")
{:ok, ~T[23:50:07.012345]}
iex> Time.from_iso8601("23:50:07.0123456")
{:ok, ~T[23:50:07.012345]}
iex> Time.from_iso8601("23:50:07.123Z")
{:ok, ~T[23:50:07.123]}
iex> Time.from_iso8601("2015:01:23 23-50-07")
{:error, :invalid_format}
iex> Time.from_iso8601("23:50:07A")
{:error, :invalid_format}
iex> Time.from_iso8601("23:50:07.")
{:error, :invalid_format}
iex> Time.from_iso8601("23:50:61")
{:error, :invalid_time}
"""
@spec from_iso8601(String.t(), Calendar.calendar()) :: {:ok, t} | {:error, atom}
def from_iso8601(string, calendar \\ Calendar.ISO)
def from_iso8601(<<?T, rest::binary>>, calendar) do
raw_from_iso8601(rest, calendar)
end
def from_iso8601(<<rest::binary>>, calendar) do
raw_from_iso8601(rest, calendar)
end
[match_time, guard_time, read_time] = Calendar.ISO.__match_time__()
defp raw_from_iso8601(string, calendar) do
with <<unquote(match_time), rest::binary>> <- string,
true <- unquote(guard_time),
{microsec, rest} <- Calendar.ISO.parse_microsecond(rest),
{_offset, ""} <- Calendar.ISO.parse_offset(rest) do
{hour, min, sec} = unquote(read_time)
with {:ok, utc_time} <- new(hour, min, sec, microsec, Calendar.ISO) do
convert(utc_time, calendar)
end
else
_ -> {:error, :invalid_format}
end
end
@doc """
Parses the extended "Local time" format described by
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
Raises if the format is invalid.
## Examples
iex> Time.from_iso8601!("23:50:07,123Z")
~T[23:50:07.123]
iex> Time.from_iso8601!("23:50:07.123Z")
~T[23:50:07.123]
iex> Time.from_iso8601!("2015:01:23 23-50-07")
** (ArgumentError) cannot parse "2015:01:23 23-50-07" as time, reason: :invalid_format
"""
@spec from_iso8601!(String.t(), Calendar.calendar()) :: t
def from_iso8601!(string, calendar \\ Calendar.ISO) do
case from_iso8601(string, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError, "cannot parse #{inspect(string)} as time, reason: #{inspect(reason)}"
end
end
@doc """
Converts the given time to
[ISO 8601:2004](https://en.wikipedia.org/wiki/ISO_8601).
By default, `Time.to_iso8601/2` returns times formatted in the "extended"
format, for human readability. It also supports the "basic" format through
passing the `:basic` option.
### Examples
iex> Time.to_iso8601(~T[23:00:13])
"23:00:13"
iex> Time.to_iso8601(~T[23:00:13.001])
"23:00:13.001"
iex> Time.to_iso8601(~T[23:00:13.001], :basic)
"230013.001"
iex> Time.to_iso8601(~N[2010-04-17 23:00:13])
"23:00:13"
"""
@spec to_iso8601(Calendar.time(), :extended | :basic) :: String.t()
def to_iso8601(time, format \\ :extended)
def to_iso8601(%{calendar: Calendar.ISO} = time, format) when format in [:extended, :basic] do
%{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
} = time
Calendar.ISO.time_to_string(hour, minute, second, microsecond, format)
end
def to_iso8601(%{calendar: _} = time, format) when format in [:extended, :basic] do
time
|> convert!(Calendar.ISO)
|> to_iso8601(format)
end
@doc """
Converts given `time` to an Erlang time tuple.
WARNING: Loss of precision may occur, as Erlang time tuples
only contain hours/minutes/seconds.
## Examples
iex> Time.to_erl(~T[23:30:15.999])
{23, 30, 15}
iex> Time.to_erl(~N[2010-04-17 23:30:15.999])
{23, 30, 15}
"""
@spec to_erl(Calendar.time()) :: :calendar.time()
def to_erl(time) do
%{hour: hour, minute: minute, second: second} = convert!(time, Calendar.ISO)
{hour, minute, second}
end
@doc """
Converts an Erlang time tuple to a `Time` struct.
## Examples
iex> Time.from_erl({23, 30, 15}, {5000, 3})
{:ok, ~T[23:30:15.005]}
iex> Time.from_erl({24, 30, 15})
{:error, :invalid_time}
"""
@spec from_erl(:calendar.time(), Calendar.microsecond(), Calendar.calendar()) ::
{:ok, t} | {:error, atom}
def from_erl(tuple, microsecond \\ {0, 0}, calendar \\ Calendar.ISO)
def from_erl({hour, minute, second}, microsecond, calendar) do
with {:ok, time} <- new(hour, minute, second, microsecond, Calendar.ISO),
do: convert(time, calendar)
end
@doc """
Converts an Erlang time tuple to a `Time` struct.
## Examples
iex> Time.from_erl!({23, 30, 15})
~T[23:30:15]
iex> Time.from_erl!({23, 30, 15}, {5000, 3})
~T[23:30:15.005]
iex> Time.from_erl!({24, 30, 15})
** (ArgumentError) cannot convert {24, 30, 15} to time, reason: :invalid_time
"""
@spec from_erl!(:calendar.time(), Calendar.microsecond(), Calendar.calendar()) :: t
def from_erl!(tuple, microsecond \\ {0, 0}, calendar \\ Calendar.ISO) do
case from_erl(tuple, microsecond, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot convert #{inspect(tuple)} to time, reason: #{inspect(reason)}"
end
end
@doc """
Adds the `number` of `unit`s to the given `time`.
This function accepts the `number` measured according to `Calendar.ISO`.
The time is returned in the same calendar as it was given in.
Note the result value represents the time of day, meaning that it is cyclic,
for instance, it will never go over 24 hours for the ISO calendar.
## Examples
iex> Time.add(~T[10:00:00], 27000)
~T[17:30:00.000000]
iex> Time.add(~T[11:00:00.005], 2400)
~T[11:40:00.005000]
iex> Time.add(~T[00:00:00], 86_399_999, :millisecond)
~T[23:59:59.999000]
iex> Time.add(~T[17:10:05], 86400)
~T[17:10:05.000000]
iex> Time.add(~T[23:00:00], -60)
~T[22:59:00.000000]
"""
@doc since: "1.6.0"
@spec add(Calendar.time(), integer, System.time_unit()) :: t
def add(%{calendar: calendar} = time, number, unit \\ :second) when is_integer(number) do
number = System.convert_time_unit(number, unit, :microsecond)
total = time_to_microseconds(time) + number
parts = Integer.mod(total, @parts_per_day)
{hour, minute, second, microsecond} = calendar.time_from_day_fraction({parts, @parts_per_day})
%Time{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: calendar
}
end
defp time_to_microseconds(%{
calendar: Calendar.ISO,
hour: 0,
minute: 0,
second: 0,
microsecond: {0, _}
}) do
0
end
defp time_to_microseconds(time) do
iso_days = {0, to_day_fraction(time)}
Calendar.ISO.iso_days_to_unit(iso_days, :microsecond)
end
@doc """
Compares two time structs.
Returns `:gt` if first time is later than the second
and `:lt` for vice versa. If the two times are equal
`:eq` is returned.
## Examples
iex> Time.compare(~T[16:04:16], ~T[16:04:28])
:lt
iex> Time.compare(~T[16:04:16], ~T[16:04:16])
:eq
iex> Time.compare(~T[16:04:16.01], ~T[16:04:16.001])
:gt
This function can also be used to compare across more
complex calendar types by considering only the time fields:
iex> Time.compare(~N[1900-01-01 16:04:16], ~N[2015-01-01 16:04:16])
:eq
iex> Time.compare(~N[2015-01-01 16:04:16], ~N[2015-01-01 16:04:28])
:lt
iex> Time.compare(~N[2015-01-01 16:04:16.01], ~N[2000-01-01 16:04:16.001])
:gt
"""
@doc since: "1.4.0"
@spec compare(Calendar.time(), Calendar.time()) :: :lt | :eq | :gt
def compare(%{calendar: calendar} = time1, %{calendar: calendar} = time2) do
%{hour: hour1, minute: minute1, second: second1, microsecond: {microsecond1, _}} = time1
%{hour: hour2, minute: minute2, second: second2, microsecond: {microsecond2, _}} = time2
case {{hour1, minute1, second1, microsecond1}, {hour2, minute2, second2, microsecond2}} do
{first, second} when first > second -> :gt
{first, second} when first < second -> :lt
_ -> :eq
end
end
def compare(time1, time2) do
{parts1, ppd1} = to_day_fraction(time1)
{parts2, ppd2} = to_day_fraction(time2)
case {parts1 * ppd2, parts2 * ppd1} do
{first, second} when first > second -> :gt
{first, second} when first < second -> :lt
_ -> :eq
end
end
@doc """
Converts given `time` to a different calendar.
Returns `{:ok, time}` if the conversion was successful,
or `{:error, reason}` if it was not, for some reason.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> Time.convert(~T[13:30:15], Calendar.Holocene)
{:ok, %Time{calendar: Calendar.Holocene, hour: 13, minute: 30, second: 15, microsecond: {0, 0}}}
"""
@doc since: "1.5.0"
@spec convert(Calendar.time(), Calendar.calendar()) :: {:ok, t} | {:error, atom}
# Keep it multiline for proper function clause errors.
def convert(
%{
calendar: calendar,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
},
calendar
) do
time = %Time{
calendar: calendar,
hour: hour,
minute: minute,
second: second,
microsecond: microsecond
}
{:ok, time}
end
def convert(%{microsecond: {_, precision}} = time, calendar) do
{hour, minute, second, {microsecond, _}} =
time
|> to_day_fraction()
|> calendar.time_from_day_fraction()
time = %Time{
calendar: calendar,
hour: hour,
minute: minute,
second: second,
microsecond: {microsecond, precision}
}
{:ok, time}
end
@doc """
Similar to `Time.convert/2`, but raises an `ArgumentError`
if the conversion between the two calendars is not possible.
## Examples
Imagine someone implements `Calendar.Holocene`, a calendar based on the
Gregorian calendar that adds exactly 10,000 years to the current Gregorian
year:
iex> Time.convert!(~T[13:30:15], Calendar.Holocene)
%Time{calendar: Calendar.Holocene, hour: 13, minute: 30, second: 15, microsecond: {0, 0}}
"""
@doc since: "1.5.0"
@spec convert!(Calendar.time(), Calendar.calendar()) :: t
def convert!(time, calendar) do
case convert(time, calendar) do
{:ok, value} ->
value
{:error, reason} ->
raise ArgumentError,
"cannot convert #{inspect(time)} to target calendar #{inspect(calendar)}, " <>
"reason: #{inspect(reason)}"
end
end
@doc """
Returns the difference between two times, considering only the hour, minute,
second and microsecond.
As with the `compare/2` function both `Time` structs and other structures
containing time can be used. If for instance a `NaiveDateTime` or `DateTime`
is passed, only the hour, month, second, and microsecond is considered. Any
additional information about a date or time zone is ignored when calculating
the difference.
The answer can be returned in any `unit` available from
`t:System.time_unit/0`. If the first unit is smaller than
the second, a negative number is returned.
This function returns the difference in seconds where seconds
are measured according to `Calendar.ISO`.
## Examples
iex> Time.diff(~T[00:29:12], ~T[00:29:10])
2
# When passing a `NaiveDateTime` the date part is ignored.
iex> Time.diff(~N[2017-01-01 00:29:12], ~T[00:29:10])
2
# Two `NaiveDateTime` structs could have big differences in the date
# but only the time part is considered.
iex> Time.diff(~N[2017-01-01 00:29:12], ~N[1900-02-03 00:29:10])
2
iex> Time.diff(~T[00:29:12], ~T[00:29:10], :microsecond)
2_000_000
iex> Time.diff(~T[00:29:10], ~T[00:29:12], :microsecond)
-2_000_000
"""
@doc since: "1.5.0"
@spec diff(Calendar.time(), Calendar.time(), System.time_unit()) :: integer
def diff(time1, time2, unit \\ :second)
def diff(
%{
calendar: Calendar.ISO,
hour: hour1,
minute: minute1,
second: second1,
microsecond: {microsecond1, @parts_per_day}
},
%{
calendar: Calendar.ISO,
hour: hour2,
minute: minute2,
second: second2,
microsecond: {microsecond2, @parts_per_day}
},
unit
) do
total =
(hour1 - hour2) * 3_600_000_000 + (minute1 - minute2) * 60_000_000 +
(second1 - second2) * 1_000_000 + (microsecond1 - microsecond2)
System.convert_time_unit(total, :microsecond, unit)
end
def diff(time1, time2, unit) do
fraction1 = to_day_fraction(time1)
fraction2 = to_day_fraction(time2)
Calendar.ISO.iso_days_to_unit({0, fraction1}, unit) -
Calendar.ISO.iso_days_to_unit({0, fraction2}, unit)
end
@doc """
Returns the given time with the microsecond field truncated to the given
precision (`:microsecond`, `millisecond` or `:second`).
The given time is returned unchanged if it already has lower precision than
the given precision.
## Examples
iex> Time.truncate(~T[01:01:01.123456], :microsecond)
~T[01:01:01.123456]
iex> Time.truncate(~T[01:01:01.123456], :millisecond)
~T[01:01:01.123]
iex> Time.truncate(~T[01:01:01.123456], :second)
~T[01:01:01]
"""
@doc since: "1.6.0"
@spec truncate(t(), :microsecond | :millisecond | :second) :: t()
def truncate(%Time{microsecond: microsecond} = time, precision) do
%{time | microsecond: Calendar.truncate(microsecond, precision)}
end
## Helpers
defp to_day_fraction(%{
hour: hour,
minute: minute,
second: second,
microsecond: {_, _} = microsecond,
calendar: calendar
}) do
calendar.time_to_day_fraction(hour, minute, second, microsecond)
end
defimpl String.Chars do
def to_string(time) do
%{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: calendar
} = time
calendar.time_to_string(hour, minute, second, microsecond)
end
end
defimpl Inspect do
def inspect(%{calendar: Calendar.ISO} = time, _) do
%{
hour: hour,
minute: minute,
second: second,
microsecond: microsecond,
calendar: Calendar.ISO
} = time
"~T[" <> Calendar.ISO.time_to_string(hour, minute, second, microsecond) <> "]"
end
def inspect(time, opts) do
Inspect.Any.inspect(time, opts)
end
end
end
@@ -1,96 +0,0 @@
defmodule Calendar.TimeZoneDatabase do
@moduledoc """
This module defines a behaviour for providing time zone data.
IANA provides time zone data that includes data about different
UTC offsets and standard offsets for time zones.
"""
@typedoc """
A period where a certain combination of UTC offset, standard offset and zone
abbreviation is in effect.
For instance one period could be the summer of 2018 in "Europe/London" where summer time /
daylight saving time is in effect and lasts from spring to autumn. At autumn the `std_offset`
changes along with the `zone_abbr` so a different period is needed during winter.
"""
@type time_zone_period :: %{
optional(any) => any,
utc_offset: Calendar.utc_offset(),
std_offset: Calendar.std_offset(),
zone_abbr: Calendar.zone_abbr()
}
@typedoc """
Limit for when a certain time zone period begins or ends.
A beginning is inclusive. An ending is exclusive. Eg. if a period is from
2015-03-29 01:00:00 and until 2015-10-25 01:00:00, the period includes and
begins from the beginning of 2015-03-29 01:00:00 and lasts until just before
2015-10-25 01:00:00.
A beginning or end for certain periods are infinite. For instance the latest
period for time zones without DST or plans to change. However for the purpose
of this behaviour they are only used for gaps in wall time where the needed
period limits are at a certain time.
"""
@type time_zone_period_limit :: Calendar.naive_datetime()
@doc """
Time zone period for a point in time in UTC for a specific time zone.
Takes a time zone name and a point in time for UTC and returns a
`time_zone_period` for that point in time.
"""
@doc since: "1.8.0"
@callback time_zone_period_from_utc_iso_days(Calendar.iso_days(), Calendar.time_zone()) ::
{:ok, time_zone_period}
| {:error, :time_zone_not_found | :utc_only_time_zone_database}
@doc """
Possible time zone periods for a certain time zone and wall clock date and time.
When the provided `datetime` is ambiguous a tuple with `:ambiguous` and two possible
periods. The periods in the list are sorted with the first element being the one that begins first.
When the provided `datetime` is in a gap - for instance during the "spring forward" when going
from winter time to summer time, a tuple with `:gap` and two periods with limits are returned
in a nested tuple. The first nested two-tuple is the period before the gap and a naive datetime
with a limit for when the period ends (wall time). The second nested two-tuple is the period
just after the gap and a datetime (wall time) for when the period begins just after the gap.
If there is only a single possible period for the provided `datetime`, the a tuple with `:single`
and the `time_zone_period` is returned.
"""
@doc since: "1.8.0"
@callback time_zone_periods_from_wall_datetime(Calendar.naive_datetime(), Calendar.time_zone()) ::
{:ok, time_zone_period}
| {:ambiguous, time_zone_period, time_zone_period}
| {:gap, {time_zone_period, time_zone_period_limit},
{time_zone_period, time_zone_period_limit}}
| {:error, :time_zone_not_found | :utc_only_time_zone_database}
end
defmodule Calendar.UTCOnlyTimeZoneDatabase do
@moduledoc """
Built-in time zone database that works only in Etc/UTC.
For all other time zones, it returns `{:error, :utc_only_time_zone_database}`.
"""
@behaviour Calendar.TimeZoneDatabase
@impl true
def time_zone_period_from_utc_iso_days(_, "Etc/UTC"),
do: {:ok, %{std_offset: 0, utc_offset: 0, zone_abbr: "UTC"}}
def time_zone_period_from_utc_iso_days(_, _),
do: {:error, :utc_only_time_zone_database}
@impl true
def time_zone_periods_from_wall_datetime(_, "Etc/UTC"),
do: {:ok, %{std_offset: 0, utc_offset: 0, zone_abbr: "UTC"}}
def time_zone_periods_from_wall_datetime(_, _),
do: {:error, :utc_only_time_zone_database}
end
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@@ -1,288 +0,0 @@
defmodule Code.Identifier do
@moduledoc false
@doc """
Checks if the given identifier is an unary op.
## Examples
iex> Code.Identifier.unary_op(:+)
{:non_associative, 300}
"""
@spec unary_op(atom) :: {:non_associative, precedence :: pos_integer} | :error
def unary_op(op) do
cond do
op in [:&] -> {:non_associative, 90}
op in [:!, :^, :not, :+, :-, :~~~] -> {:non_associative, 300}
op in [:@] -> {:non_associative, 320}
true -> :error
end
end
@doc """
Checks if the given identifier is a binary op.
## Examples
iex> Code.Identifier.binary_op(:+)
{:left, 210}
"""
@spec binary_op(atom) :: {:left | :right, precedence :: pos_integer} | :error
def binary_op(op) do
cond do
op in [:<-, :\\] -> {:left, 40}
op in [:when] -> {:right, 50}
op in [:"::"] -> {:right, 60}
op in [:|] -> {:right, 70}
op in [:=] -> {:right, 100}
op in [:||, :|||, :or] -> {:left, 130}
op in [:&&, :&&&, :and] -> {:left, 140}
op in [:==, :!=, :=~, :===, :!==] -> {:left, 150}
op in [:<, :<=, :>=, :>] -> {:left, 160}
op in [:|>, :<<<, :>>>, :<~, :~>, :<<~, :~>>, :<~>, :<|>] -> {:left, 170}
op in [:in] -> {:left, 180}
op in [:^^^] -> {:left, 190}
op in [:++, :--, :.., :<>] -> {:right, 200}
op in [:+, :-] -> {:left, 210}
op in [:*, :/] -> {:left, 220}
op in [:.] -> {:left, 310}
true -> :error
end
end
@doc """
Classifies the given atom into one of the following categories:
* `:alias` - a valid Elixir alias, like `Foo`, `Foo.Bar` and so on
* `:callable_local` - an atom that can be used as a local call;
this category includes identifiers like `:foo`
* `:callable_operator` - all callable operators, such as `:<>`. Note
operators such as `:..` are not callable because of ambiguity
* `:not_atomable` - callable operators that must be wrapped in quotes when
defined as an atom. For example, `::` must be written as `:"::"` to avoid
the ambiguity between the atom and the keyword identifier
* `:not_callable` - an atom that cannot be used as a function call after the
`.` operator (for example, `:<<>>` is not callable because `Foo.<<>>` is a
syntax error); this category includes atoms like `:Foo`, since they are
valid identifiers but they need quotes to be used in function calls
(`Foo."Bar"`)
* `:other` - any other atom (these are usually escaped when inspected, like
`:"foo and bar"`)
"""
def classify(atom) when is_atom(atom) do
charlist = Atom.to_charlist(atom)
cond do
atom in [:%, :%{}, :{}, :<<>>, :..., :.., :., :->] ->
:not_callable
atom in [:"::"] ->
:not_atomable
unary_op(atom) != :error or binary_op(atom) != :error ->
:callable_operator
valid_alias?(charlist) ->
:alias
true ->
case :elixir_config.get(:identifier_tokenizer, String.Tokenizer).tokenize(charlist) do
{kind, _acc, [], _, _, special} ->
if kind == :identifier and not :lists.member(?@, special) do
:callable_local
else
:not_callable
end
_ ->
:other
end
end
end
defp valid_alias?('Elixir' ++ rest), do: valid_alias_piece?(rest)
defp valid_alias?(_other), do: false
defp valid_alias_piece?([?., char | rest]) when char >= ?A and char <= ?Z,
do: valid_alias_piece?(trim_leading_while_valid_identifier(rest))
defp valid_alias_piece?([]), do: true
defp valid_alias_piece?(_other), do: false
defp trim_leading_while_valid_identifier([char | rest])
when char >= ?a and char <= ?z
when char >= ?A and char <= ?Z
when char >= ?0 and char <= ?9
when char == ?_ do
trim_leading_while_valid_identifier(rest)
end
defp trim_leading_while_valid_identifier(other) do
other
end
@doc """
Inspects the identifier as an atom.
"""
def inspect_as_atom(atom) when is_nil(atom) or is_boolean(atom) do
Atom.to_string(atom)
end
def inspect_as_atom(atom) when is_atom(atom) do
binary = Atom.to_string(atom)
case classify(atom) do
:alias ->
case binary do
binary when binary in ["Elixir", "Elixir.Elixir"] -> binary
"Elixir.Elixir." <> _rest -> binary
"Elixir." <> rest -> rest
end
type when type in [:callable_local, :callable_operator, :not_callable] ->
":" <> binary
_ ->
{escaped, _} = escape(binary, ?")
IO.iodata_to_binary([?:, ?", escaped, ?"])
end
end
@doc """
Inspects the given identifier as a key.
"""
def inspect_as_key(atom) when is_atom(atom) do
binary = Atom.to_string(atom)
case classify(atom) do
type when type in [:callable_local, :callable_operator, :not_callable] ->
IO.iodata_to_binary([binary, ?:])
_ ->
{escaped, _} = escape(binary, ?")
IO.iodata_to_binary([?", escaped, ?", ?:])
end
end
@doc """
Inspects the given identifier as a function name.
"""
def inspect_as_function(atom) when is_atom(atom) do
binary = Atom.to_string(atom)
case classify(atom) do
type when type in [:callable_local, :callable_operator, :not_atomable] ->
binary
type ->
escaped =
if type in [:not_callable, :alias] do
binary
else
elem(escape(binary, ?"), 0)
end
IO.iodata_to_binary([?", escaped, ?"])
end
end
@doc """
Extracts the name and arity of the parent from the anonymous function identifier.
"""
# Example of this format: -NAME/ARITY-fun-COUNT-
def extract_anonymous_fun_parent(atom) when is_atom(atom) do
with "-" <> rest <- Atom.to_string(atom),
[trailing | reversed] = rest |> String.split("/") |> Enum.reverse(),
[arity, _inner, _count, ""] <- String.split(trailing, "-") do
{reversed |> Enum.reverse() |> Enum.join("/") |> String.to_atom(), arity}
else
_ -> :error
end
end
@doc """
Escapes the given identifier.
"""
def escape(other, char, count \\ :infinity, fun \\ &escape_map/1) do
escape(other, char, count, [], fun)
end
defp escape(<<_, _::binary>> = binary, _char, 0, acc, _fun) do
{acc, binary}
end
defp escape(<<char, t::binary>>, char, count, acc, fun) do
escape(t, char, decrement(count), [acc | [?\\, char]], fun)
end
defp escape(<<?#, ?{, t::binary>>, char, count, acc, fun) do
escape(t, char, decrement(count), [acc | '\\\#{'], fun)
end
defp escape(<<h::utf8, t::binary>>, char, count, acc, fun) do
escaped = if value = fun.(h), do: value, else: escape_char(h)
escape(t, char, decrement(count), [acc | escaped], fun)
end
defp escape(<<a::4, b::4, t::binary>>, char, count, acc, fun) do
escape(t, char, decrement(count), [acc | ['\\x', to_hex(a), to_hex(b)]], fun)
end
defp escape(<<>>, _char, _count, acc, _fun) do
{acc, <<>>}
end
defp escape_char(0), do: '\\0'
defp escape_char(65279), do: '\\uFEFF'
defp escape_char(char)
when char in 0x20..0x7E
when char in 0xA0..0xD7FF
when char in 0xE000..0xFFFD
when char in 0x10000..0x10FFFF do
<<char::utf8>>
end
defp escape_char(char) when char < 0x100 do
<<a::4, b::4>> = <<char::8>>
['\\x', to_hex(a), to_hex(b)]
end
defp escape_char(char) when char < 0x10000 do
<<a::4, b::4, c::4, d::4>> = <<char::16>>
['\\x{', to_hex(a), to_hex(b), to_hex(c), to_hex(d), ?}]
end
defp escape_char(char) when char < 0x1000000 do
<<a::4, b::4, c::4, d::4, e::4, f::4>> = <<char::24>>
['\\x{', to_hex(a), to_hex(b), to_hex(c), to_hex(d), to_hex(e), to_hex(f), ?}]
end
defp escape_map(?\a), do: '\\a'
defp escape_map(?\b), do: '\\b'
defp escape_map(?\d), do: '\\d'
defp escape_map(?\e), do: '\\e'
defp escape_map(?\f), do: '\\f'
defp escape_map(?\n), do: '\\n'
defp escape_map(?\r), do: '\\r'
defp escape_map(?\t), do: '\\t'
defp escape_map(?\v), do: '\\v'
defp escape_map(?\\), do: '\\\\'
defp escape_map(_), do: false
@compile {:inline, to_hex: 1, decrement: 1}
defp to_hex(c) when c in 0..9, do: ?0 + c
defp to_hex(c) when c in 10..15, do: ?A + c - 10
defp decrement(:infinity), do: :infinity
defp decrement(counter), do: counter - 1
end
-416
View File
@@ -1,416 +0,0 @@
defmodule Code.Typespec do
@moduledoc false
@doc """
Converts a spec clause back to Elixir quoted expression.
"""
@spec spec_to_quoted(atom, tuple) :: {atom, keyword, [Macro.t()]}
def spec_to_quoted(name, spec)
def spec_to_quoted(name, {:type, line, :fun, [{:type, _, :product, args}, result]})
when is_atom(name) do
meta = [line: line]
body = {name, meta, Enum.map(args, &typespec_to_quoted/1)}
vars =
for type_expr <- args ++ [result],
var <- collect_vars(type_expr),
uniq: true,
do: {var, {:var, meta, nil}}
spec = {:"::", meta, [body, typespec_to_quoted(result)]}
if vars == [] do
spec
else
{:when, meta, [spec, vars]}
end
end
def spec_to_quoted(name, {:type, line, :fun, []}) when is_atom(name) do
{:"::", [line: line], [{name, [line: line], []}, quote(do: term)]}
end
def spec_to_quoted(name, {:type, line, :bounded_fun, [type, constrs]}) when is_atom(name) do
{:type, _, :fun, [{:type, _, :product, args}, result]} = type
guards =
for {:type, _, :constraint, [{:atom, _, :is_subtype}, [{:var, _, var}, type]]} <- constrs do
{erl_to_ex_var(var), typespec_to_quoted(type)}
end
meta = [line: line]
ignore_vars = Keyword.keys(guards)
vars =
for type_expr <- args ++ [result],
var <- collect_vars(type_expr),
var not in ignore_vars,
uniq: true,
do: {var, {:var, meta, nil}}
args = for arg <- args, do: typespec_to_quoted(arg)
when_args = [
{:"::", meta, [{name, [line: line], args}, typespec_to_quoted(result)]},
guards ++ vars
]
{:when, meta, when_args}
end
@doc """
Converts a type clause back to Elixir AST.
"""
def type_to_quoted(type)
def type_to_quoted({{:record, record}, fields, args}) when is_atom(record) do
fields = for field <- fields, do: typespec_to_quoted(field)
args = for arg <- args, do: typespec_to_quoted(arg)
type = {:{}, [], [record | fields]}
quote(do: unquote(record)(unquote_splicing(args)) :: unquote(type))
end
def type_to_quoted({name, type, args}) when is_atom(name) do
args = for arg <- args, do: typespec_to_quoted(arg)
quote(do: unquote(name)(unquote_splicing(args)) :: unquote(typespec_to_quoted(type)))
end
@doc """
Returns all types available from the module's BEAM code.
The result is returned as a list of tuples where the first
element is the type (`:typep`, `:type` and `:opaque`).
The module must have a corresponding BEAM file which can be
located by the runtime system. The types will be in the Erlang
Abstract Format.
"""
@spec fetch_types(module | binary) :: {:ok, [tuple]} | :error
def fetch_types(module) when is_atom(module) or is_binary(module) do
case typespecs_abstract_code(module) do
{:ok, abstract_code} ->
exported_types = for {:attribute, _, :export_type, types} <- abstract_code, do: types
exported_types = List.flatten(exported_types)
types =
for {:attribute, _, kind, {name, _, args} = type} <- abstract_code,
kind in [:opaque, :type] do
cond do
kind == :opaque -> {:opaque, type}
{name, length(args)} in exported_types -> {:type, type}
true -> {:typep, type}
end
end
{:ok, types}
_ ->
:error
end
end
@doc """
Returns all specs available from the module's BEAM code.
The result is returned as a list of tuples where the first
element is spec name and arity and the second is the spec.
The module must have a corresponding BEAM file which can be
located by the runtime system. The types will be in the Erlang
Abstract Format.
"""
@spec fetch_specs(module) :: {:ok, [tuple]} | :error
def fetch_specs(module) when is_atom(module) or is_binary(module) do
case typespecs_abstract_code(module) do
{:ok, abstract_code} ->
{:ok, for({:attribute, _, :spec, value} <- abstract_code, do: value)}
:error ->
:error
end
end
@doc """
Returns all callbacks available from the module's BEAM code.
The result is returned as a list of tuples where the first
element is spec name and arity and the second is the spec.
The module must have a corresponding BEAM file
which can be located by the runtime system. The types will be
in the Erlang Abstract Format.
"""
@spec fetch_callbacks(module) :: {:ok, [tuple]} | :error
def fetch_callbacks(module) when is_atom(module) or is_binary(module) do
case typespecs_abstract_code(module) do
{:ok, abstract_code} ->
{:ok, for({:attribute, _, :callback, value} <- abstract_code, do: value)}
:error ->
:error
end
end
defp typespecs_abstract_code(module) do
with {module, binary} <- get_module_and_beam(module),
{:ok, {_, [debug_info: {:debug_info_v1, backend, data}]}} <-
:beam_lib.chunks(binary, [:debug_info]) do
case data do
{:elixir_v1, %{}, specs} ->
# Fast path to avoid translation to Erlang from Elixir.
{:ok, specs}
_ ->
case backend.debug_info(:erlang_v1, module, data, []) do
{:ok, abstract_code} -> {:ok, abstract_code}
_ -> :error
end
end
else
_ -> :error
end
end
defp get_module_and_beam(module) when is_atom(module) do
case :code.get_object_code(module) do
{^module, beam, _filename} -> {module, beam}
:error -> :error
end
end
defp get_module_and_beam(beam) when is_binary(beam) do
case :beam_lib.info(beam) do
[_ | _] = info -> {info[:module], beam}
_ -> :error
end
end
## To AST conversion
defp collect_vars({:ann_type, _line, args}) when is_list(args) do
[]
end
defp collect_vars({:type, _line, _kind, args}) when is_list(args) do
Enum.flat_map(args, &collect_vars/1)
end
defp collect_vars({:remote_type, _line, args}) when is_list(args) do
Enum.flat_map(args, &collect_vars/1)
end
defp collect_vars({:typed_record_field, _line, type}) do
collect_vars(type)
end
defp collect_vars({:paren_type, _line, [type]}) do
collect_vars(type)
end
defp collect_vars({:var, _line, var}) do
[erl_to_ex_var(var)]
end
defp collect_vars(_) do
[]
end
defp typespec_to_quoted({:user_type, line, name, args}) do
typespec_to_quoted({:type, line, name, args})
end
defp typespec_to_quoted({:type, line, :tuple, :any}) do
{:tuple, [line: line], []}
end
defp typespec_to_quoted({:type, line, :tuple, args}) do
args = for arg <- args, do: typespec_to_quoted(arg)
{:{}, [line: line], args}
end
defp typespec_to_quoted({:type, _line, :list, [{:type, _, :union, unions} = arg]}) do
case unpack_typespec_kw(unions, []) do
{:ok, ast} -> ast
:error -> [typespec_to_quoted(arg)]
end
end
defp typespec_to_quoted({:type, line, :list, []}) do
{:list, [line: line], []}
end
defp typespec_to_quoted({:type, _line, :list, [arg]}) do
[typespec_to_quoted(arg)]
end
defp typespec_to_quoted({:type, line, :nonempty_list, []}) do
[{:..., [line: line], nil}]
end
defp typespec_to_quoted({:type, line, :nonempty_list, [arg]}) do
[typespec_to_quoted(arg), {:..., [line: line], nil}]
end
defp typespec_to_quoted({:type, line, :map, :any}) do
{:map, [line: line], []}
end
defp typespec_to_quoted({:type, line, :map, fields}) do
fields =
Enum.map(fields, fn
{:type, _, :map_field_assoc, :any} ->
{{:optional, [], [{:any, [], []}]}, {:any, [], []}}
{:type, _, :map_field_exact, [{:atom, _, k}, v]} ->
{k, typespec_to_quoted(v)}
{:type, _, :map_field_exact, [k, v]} ->
{{:required, [], [typespec_to_quoted(k)]}, typespec_to_quoted(v)}
{:type, _, :map_field_assoc, [k, v]} ->
{{:optional, [], [typespec_to_quoted(k)]}, typespec_to_quoted(v)}
end)
{struct, fields} = Keyword.pop(fields, :__struct__)
map = {:%{}, [line: line], fields}
if struct do
{:%, [line: line], [struct, map]}
else
map
end
end
defp typespec_to_quoted({:type, line, :binary, [arg1, arg2]}) do
[arg1, arg2] = for arg <- [arg1, arg2], do: typespec_to_quoted(arg)
case {typespec_to_quoted(arg1), typespec_to_quoted(arg2)} do
{arg1, 0} ->
quote(line: line, do: <<_::unquote(arg1)>>)
{0, arg2} ->
quote(line: line, do: <<_::_*unquote(arg2)>>)
{arg1, arg2} ->
quote(line: line, do: <<_::unquote(arg1), _::_*unquote(arg2)>>)
end
end
defp typespec_to_quoted({:type, line, :union, args}) do
args = for arg <- args, do: typespec_to_quoted(arg)
Enum.reduce(Enum.reverse(args), fn arg, expr -> {:|, [line: line], [arg, expr]} end)
end
defp typespec_to_quoted({:type, line, :fun, [{:type, _, :product, args}, result]}) do
args = for arg <- args, do: typespec_to_quoted(arg)
[{:->, [line: line], [args, typespec_to_quoted(result)]}]
end
defp typespec_to_quoted({:type, line, :fun, [args, result]}) do
[{:->, [line: line], [[typespec_to_quoted(args)], typespec_to_quoted(result)]}]
end
defp typespec_to_quoted({:type, line, :fun, []}) do
typespec_to_quoted({:type, line, :fun, [{:type, line, :any}, {:type, line, :any, []}]})
end
defp typespec_to_quoted({:type, line, :range, [left, right]}) do
{:.., [line: line], [typespec_to_quoted(left), typespec_to_quoted(right)]}
end
defp typespec_to_quoted({:type, _line, nil, []}) do
[]
end
defp typespec_to_quoted({:type, line, name, args}) do
args = for arg <- args, do: typespec_to_quoted(arg)
{name, [line: line], args}
end
defp typespec_to_quoted({:var, line, var}) do
{erl_to_ex_var(var), [line: line], nil}
end
defp typespec_to_quoted({:op, line, op, arg}) do
{op, [line: line], [typespec_to_quoted(arg)]}
end
defp typespec_to_quoted({:remote_type, line, [mod, name, args]}) do
remote_type(line, mod, name, args)
end
defp typespec_to_quoted({:ann_type, line, [var, type]}) do
{:"::", [line: line], [typespec_to_quoted(var), typespec_to_quoted(type)]}
end
defp typespec_to_quoted(
{:typed_record_field, {:record_field, line, {:atom, line1, name}}, type}
) do
typespec_to_quoted({:ann_type, line, [{:var, line1, name}, type]})
end
defp typespec_to_quoted({:type, _, :any}) do
quote(do: ...)
end
defp typespec_to_quoted({:paren_type, _, [type]}) do
typespec_to_quoted(type)
end
defp typespec_to_quoted({type, _line, atom}) when is_atom(type) do
atom
end
defp typespec_to_quoted(other), do: other
## Helpers
defp remote_type(line, {:atom, _, :elixir}, {:atom, _, :charlist}, []) do
typespec_to_quoted({:type, line, :charlist, []})
end
defp remote_type(line, {:atom, _, :elixir}, {:atom, _, :nonempty_charlist}, []) do
typespec_to_quoted({:type, line, :nonempty_charlist, []})
end
defp remote_type(line, {:atom, _, :elixir}, {:atom, _, :struct}, []) do
typespec_to_quoted({:type, line, :struct, []})
end
defp remote_type(line, {:atom, _, :elixir}, {:atom, _, :as_boolean}, [arg]) do
typespec_to_quoted({:type, line, :as_boolean, [arg]})
end
defp remote_type(line, {:atom, _, :elixir}, {:atom, _, :keyword}, args) do
typespec_to_quoted({:type, line, :keyword, args})
end
defp remote_type(line, mod, name, args) do
args = for arg <- args, do: typespec_to_quoted(arg)
dot = {:., [line: line], [typespec_to_quoted(mod), typespec_to_quoted(name)]}
{dot, [line: line], args}
end
defp erl_to_ex_var(var) do
case Atom.to_string(var) do
<<"_", c::utf8, rest::binary>> ->
String.to_atom("_#{String.downcase(<<c::utf8>>)}#{rest}")
<<c::utf8, rest::binary>> ->
String.to_atom("#{String.downcase(<<c::utf8>>)}#{rest}")
end
end
defp unpack_typespec_kw([{:type, _, :tuple, [{:atom, _, atom}, type]} | t], acc) do
unpack_typespec_kw(t, [{atom, typespec_to_quoted(type)} | acc])
end
defp unpack_typespec_kw([], acc) do
{:ok, Enum.reverse(acc)}
end
defp unpack_typespec_kw(_, _acc) do
:error
end
end
+24 -100
View File
@@ -13,7 +13,7 @@ defprotocol Collectable do
The `Enumerable` protocol is useful to take values out of a collection.
In order to support a wide range of values, the functions provided by
the `Enumerable` protocol do not keep shape. For example, passing a
map to `Enum.map/2` always returns a list.
dictionary to `Enum.map/2` always returns a list.
This design is intentional. `Enumerable` was designed to support infinite
collections, resources and other structures with fixed shape. For example,
@@ -21,57 +21,26 @@ defprotocol Collectable do
shape where just the range limits are stored.
The `Collectable` module was designed to fill the gap left by the
`Enumerable` protocol. `Collectable.into/1` can be seen as the opposite of
`Enumerable.reduce/3`. If the functions in `Enumerable` are about taking values out,
then `Collectable.into/1` is about collecting those values into a structure.
## Examples
To show how to manually use the `Collectable` protocol, let's play with its
implementation for `MapSet`.
iex> {initial_acc, collector_fun} = Collectable.into(MapSet.new())
iex> updated_acc = Enum.reduce([1, 2, 3], initial_acc, fn elem, acc ->
...> collector_fun.(acc, {:cont, elem})
...> end)
iex> collector_fun.(updated_acc, :done)
#MapSet<[1, 2, 3]>
To show how the protocol can be implemented, we can take again a look at the
implementation for `MapSet`. In this implementation "collecting" elements
simply means inserting them in the set through `MapSet.put/2`.
defimpl Collectable, for: MapSet do
def into(original) do
collector_fun = fn
set, {:cont, elem} -> MapSet.put(set, elem)
set, :done -> set
_set, :halt -> :ok
end
{original, collector_fun}
end
end
`Enumerable` protocol. `into/1` can be seen as the opposite of
`Enumerable.reduce/3`. If `Enumerable` is about taking values out,
`Collectable.into/1` is about collecting those values into a structure.
"""
@type command :: {:cont, term} | :done | :halt
@doc """
Returns an initial accumulator and a "collector" function.
Returns a function that collects values alongside
the initial accumulation value.
The returned function receives a term and a command and injects the term into
the collectable on every `{:cont, term}` command.
The returned function receives a collectable and injects a given
value into it for every `{:cont, term}` instruction.
`:done` is passed as a command when no further values will be injected. This
is useful when there's a need to close resources or normalizing values. A
collectable must be returned when the command is `:done`.
`:done` is passed when no further values will be injected, useful
for closing resources and normalizing values. A collectable must
be returned on `:done`.
If injection is suddenly interrupted, `:halt` is passed and the function
can return any value as it won't be used.
For examples on how to use the `Collectable` protocol and `into/1` see the
module documentation.
If injection is suddenly interrupted, `:halt` is passed and it can
return any value, as it won't be used.
"""
@spec into(t) :: {term, (term, command -> t | term)}
def into(collectable)
@@ -79,75 +48,30 @@ end
defimpl Collectable, for: List do
def into(original) do
if original != [] do
IO.warn(
"the Collectable protocol is deprecated for non-empty lists. The behaviour of " <>
"things like Enum.into/2 or \"for\" comprehensions with an :into option is incorrect " <>
"when collecting into non-empty lists. If you're collecting into a non-empty keyword " <>
"list, consider using Keyword.merge/2 instead. If you're collecting into a non-empty " <>
"list, consider concatenating the two lists with the ++ operator."
)
end
fun = fn
list, {:cont, x} -> [x | list]
{[], fn
list, {:cont, x} -> [x|list]
list, :done -> original ++ :lists.reverse(list)
_, :halt -> :ok
end
{[], fun}
end}
end
end
defimpl Collectable, for: BitString do
def into(original) when is_binary(original) do
fun = fn
acc, {:cont, x} when is_binary(x) and is_list(acc) ->
[acc | x]
acc, {:cont, x} when is_bitstring(x) and is_bitstring(acc) ->
<<acc::bitstring, x::bitstring>>
acc, {:cont, x} when is_bitstring(x) ->
<<IO.iodata_to_binary(acc)::bitstring, x::bitstring>>
acc, :done when is_bitstring(acc) ->
acc
acc, :done ->
IO.iodata_to_binary(acc)
_, :halt ->
:ok
end
{[original], fun}
end
def into(original) when is_bitstring(original) do
fun = fn
acc, {:cont, x} when is_bitstring(x) ->
<<acc::bitstring, x::bitstring>>
acc, :done ->
acc
_, :halt ->
:ok
end
{original, fun}
def into(original) do
{original, fn
acc, {:cont, x} when is_bitstring(x) -> [acc|x]
acc, :done -> IO.iodata_to_binary(acc)
_, :halt -> :ok
end}
end
end
defimpl Collectable, for: Map do
def into(original) do
fun = fn
{original, fn
map, {:cont, {k, v}} -> :maps.put(k, v, map)
map, :done -> map
_, :halt -> :ok
end
{original, fun}
end}
end
end
-266
View File
@@ -1,266 +0,0 @@
defmodule Config do
@moduledoc ~S"""
A simple keyword-based configuration API.
## Example
This module is most commonly used to define application configuration,
typically in `config/config.exs`:
import Config
config :some_app,
key1: "value1",
key2: "value2"
import_config "#{Mix.env()}.exs"
`import Config` will import the functions `config/2`, `config/3`
and `import_config/1` to help you manage your configuration.
`config/2` and `config/3` are used to define key-value configuration
for a given application. Once Mix starts, it will automatically
evaluate the configuration file and persist the configuration above
into `:some_app`'s application environment, which can be accessed in
as follows:
"value1" = Application.fetch_env!(:some_app, :key1)
Finally, the line `import_config "#{Mix.env()}.exs"` will import other
config files, based on the current Mix environment, such as
`config/dev.exs` and `config/test.exs`.
`Config` also provides a low-level API for evaluating and reading
configuration, under the `Config.Reader` module.
**Important:** if you are writing a library to be used by other developers,
it is generally recommended to avoid the application environment, as the
application environment is effectively a global storage. For more information,
read our [library guidelines](library-guidelines.html).
## Migrating from `use Mix.Config`
The `Config` module in Elixir was introduced in v1.9 as a replacement to
`Mix.Config`, which was specific to Mix and has been deprecated.
You can leverage `Config` instead of `Mix.Config` in two steps. The first
step is to replace `use Mix.Config` at the top of your config files by
`import Config`.
The second is to make sure your `import_config/1` calls do not have a
wildcard character. If so, you need to perform the wildcard lookup
manually. For example, if you did:
import_config "../apps/*/config/config.exs"
It has to be replaced by:
for config <- "../apps/*/config/config.exs" |> Path.expand(__DIR__) |> Path.wildcard() do
import_config config
end
## config/releases.exs
If you are using releases, see `mix release`, there another configuration
file called `config/releases.exs`. While `config/config.exs` and friends
mentioned in the previous section are executed whenever you run a Mix
command, including when you assemble a release, `config/releases.exs` is
execute every time your production system boots. Since Mix is not available
in a production system, `config/releases.exs` must not use any of the
functions from Mix.
"""
@config_key {__MODULE__, :config}
@files_key {__MODULE__, :files}
defp get_config!() do
Process.get(@config_key) || raise_improper_use!()
end
defp put_config(value) do
Process.put(@config_key, value)
end
defp delete_config() do
Process.delete(@config_key)
end
defp get_files!() do
Process.get(@files_key) || raise_improper_use!()
end
defp put_files(value) do
Process.put(@files_key, value)
end
defp delete_files() do
Process.delete(@files_key)
end
defp raise_improper_use!() do
raise "could not set configuration via Config. " <>
"This usually means you are trying to execute a configuration file " <>
"directly, instead of reading it with Config.Reader"
end
@doc """
Configures the given `root_key`.
Keyword lists are always deep-merged.
## Examples
The given `opts` are merged into the existing configuration
for the given `root_key`. Conflicting keys are overridden by the
ones specified in `opts`. For example, the application
configuration below
config :logger,
level: :warn,
backends: [:console]
config :logger,
level: :info,
truncate: 1024
will have a final configuration for `:logger` of:
[level: :info, backends: [:console], truncate: 1024]
"""
@doc since: "1.9.0"
def config(root_key, opts) when is_atom(root_key) and is_list(opts) do
unless Keyword.keyword?(opts) do
raise ArgumentError, "config/2 expected a keyword list, got: #{inspect(opts)}"
end
get_config!()
|> __merge__([{root_key, opts}])
|> put_config()
end
@doc """
Configures the given `key` for the given `root_key`.
Keyword lists are always deep merged.
## Examples
The given `opts` are merged into the existing values for `key`
in the given `root_key`. Conflicting keys are overridden by the
ones specified in `opts`. For example, the application
configuration below
config :ecto, Repo,
log_level: :warn,
adapter: Ecto.Adapters.Postgres
config :ecto, Repo,
log_level: :info,
pool_size: 10
will have a final value of the configuration for the `Repo`
key in the `:ecto` application of:
[log_level: :info, pool_size: 10, adapter: Ecto.Adapters.Postgres]
"""
@doc since: "1.9.0"
def config(root_key, key, opts) when is_atom(root_key) and is_atom(key) do
get_config!()
|> __merge__([{root_key, [{key, opts}]}])
|> put_config()
end
@doc ~S"""
Imports configuration from the given file.
In case the file doesn't exist, an error is raised.
If file is a relative, it will be expanded relatively to the
directory the current configuration file is in.
## Examples
This is often used to emulate configuration across environments:
import_config "#{Mix.env()}.exs"
"""
@doc since: "1.9.0"
defmacro import_config(file) do
quote do
Config.__import__!(Path.expand(unquote(file), __DIR__))
:ok
end
end
@doc false
@spec __import__!(Path.t()) :: keyword()
def __import__!(file) when is_binary(file) do
current_files = get_files!()
if file in current_files do
raise ArgumentError,
"attempting to load configuration #{Path.relative_to_cwd(file)} recursively"
end
put_files([file | current_files])
Code.eval_file(file)
end
@doc false
@spec __eval__!(Path.t(), [Path.t()]) :: {keyword, [Path.t()]}
def __eval__!(file, imported_paths \\ []) when is_binary(file) and is_list(imported_paths) do
previous_config = put_config([])
previous_files = put_files(imported_paths)
try do
{eval_config, _} = __import__!(Path.expand(file))
case get_config!() do
[] when is_list(eval_config) ->
{validate!(eval_config, file), get_files!()}
pdict_config ->
{pdict_config, get_files!()}
end
after
if previous_config, do: put_config(previous_config), else: delete_config()
if previous_files, do: put_files(previous_files), else: delete_files()
end
end
@doc false
def __merge__(config1, config2) when is_list(config1) and is_list(config2) do
Keyword.merge(config1, config2, fn _, app1, app2 ->
Keyword.merge(app1, app2, &deep_merge/3)
end)
end
defp deep_merge(_key, value1, value2) do
if Keyword.keyword?(value1) and Keyword.keyword?(value2) do
Keyword.merge(value1, value2, &deep_merge/3)
else
value2
end
end
defp validate!(config, file) do
Enum.all?(config, fn
{app, value} when is_atom(app) ->
if Keyword.keyword?(value) do
true
else
raise ArgumentError,
"expected config for app #{inspect(app)} in #{Path.relative_to_cwd(file)} " <>
"to return keyword list, got: #{inspect(value)}"
end
_ ->
false
end)
config
end
end
-249
View File
@@ -1,249 +0,0 @@
defmodule Config.Provider do
@moduledoc """
Specifies a provider API that loads configuration during boot.
Config providers are typically used during releases to load
external configuration while the system boots. This is done
by starting the VM with the minimum amount of applications
running, then invoking all of the providers, and then
restarting the system. This requires a mutable configuration
file on disk, as the results of the providers are written to
the file system. For more information on runtime configuration,
see `mix release`.
## Sample config provider
For example, imagine you need to load some configuration from
a JSON file and load that into the system. Said configuration
provider would look like:
defmodule JSONConfigProvider do
@behaviour Config.Provider
# Let's pass the path to the JSON file as config
def init(path) when is_binary(path), do: path
def load(config, path) do
# We need to start any app we may depend on.
{:ok, _} = Application.ensure_all_started(:jason)
json = path |> File.read!() |> Jason.decode!()
Config.Reader.merge(
config,
my_app: [
some_value: json["my_app_some_value"],
another_value: json["my_app_another_value"],
]
)
end
end
Then when specifying your release, you can specify the provider:
config_providers: [{JSONConfigProvider, "/etc/config.json"}]
Now once the system boots, it will invoke the provider early in
the boot process, save the merged configuration to the disk, and
reboot the system with the new values in place.
"""
@type config :: keyword
@type state :: term
@typedoc """
A path pointing to a configuration file.
Since configuration files are often accessed on target machines,
it can be expressed either as:
* a binary representing an absolute path
* a tuple {:system, system_var, path} where the config is the
concatenation of the `system_var` with the given `path`
"""
@type config_path :: {:system, binary(), binary()} | binary()
@doc """
Invoked when initializing a config provider.
A config provider is typically initialized on the machine
where the system is assembled and not on the target machine.
The `c:init/1` callback is useful to verify the arguments
given to the provider and prepare the state that will be
given to `c:load/2`.
Furthermore, because the state returned by `c:init/1` can
be written to text-based config files, it should be
restricted only to simple data types, such as integers,
strings, atoms, tuples, maps, and lists. Entries such as
PIDs, references, and functions cannot be serialized.
"""
@callback init(term) :: state
@doc """
Loads configuration (typically during system boot).
It receives the current `config` and the `state` returned by
`c:init/1`. Then you typically read the extra configuration
from an external source and merge it into the received `config`.
Merging should be done with `Config.Reader.merge/2`, as it
performs deep merge. It should return the updated config.
Note that `c:load/2` is typically invoked very early in the
boot process, therefore if you need to use an application
in the provider, it is your responsibility to start it.
"""
@callback load(config, state) :: config
@doc false
defstruct [:providers, :config_path, extra_config: [], prune_after_boot: false]
@doc """
Validates a `t:config_path/0`.
"""
@doc since: "1.9.0"
@spec validate_config_path!(config_path) :: :ok
def validate_config_path!({:system, name, path})
when is_binary(name) and is_binary(path),
do: :ok
def validate_config_path!(path) do
if is_binary(path) and Path.type(path) != :relative do
:ok
else
raise ArgumentError, """
expected configuration path to be:
* a binary representing an absolute path
* a tuple {:system, system_var, path} where the config is the \
concatenation of the `system_var` with the given `path`
Got: #{inspect(path)}
"""
end
end
@doc """
Resolves a `t:config_path/0` to an actual path.
"""
@doc since: "1.9.0"
@spec resolve_config_path!(config_path) :: binary
def resolve_config_path!(path) when is_binary(path), do: path
def resolve_config_path!({:system, name, path}), do: System.fetch_env!(name) <> path
@doc false
def init(providers, config_path, opts \\ []) when is_list(providers) and is_list(opts) do
validate_config_path!(config_path)
providers = for {provider, init} <- providers, do: {provider, provider.init(init)}
struct!(%Config.Provider{config_path: config_path, providers: providers}, opts)
end
@doc false
def boot(app, key, restart_fun \\ &System.restart/0) do
# The app with the config provider settings may not
# have been loaded at this point, so make sure we load
# its environment before querying it.
_ = :application.load(app)
# The config provider typically runs very early in the
# release process, so we need to make sure Elixir is started
# before we go around running Elixir code.
{:ok, _} = :application.ensure_all_started(:elixir)
case :application.get_env(app, key) do
{:ok, %Config.Provider{} = provider} ->
path = resolve_config_path!(provider.config_path)
validate_no_cyclic_boot!(path)
read_config!(path)
|> Config.__merge__([{app, [{key, booted_key(provider, path)}]} | provider.extra_config])
|> run_providers(provider)
|> write_config!(path)
restart_fun.()
{:ok, {:booted, path}} ->
File.rm(path)
:booted
{:ok, :booted} ->
:booted
_ ->
:skip
end
end
defp booted_key(%{prune_after_boot: true}, path), do: {:booted, path}
defp booted_key(%{prune_after_boot: false}, _path), do: :booted
defp validate_no_cyclic_boot!(path) do
if System.get_env("ELIXIR_CONFIG_PROVIDER_BOOTED") do
bad_path_abort("Got infinite loop when running Config.Provider", path)
else
System.put_env("ELIXIR_CONFIG_PROVIDER_BOOTED", "1")
end
end
defp read_config!(path) do
case :file.consult(path) do
{:ok, [inner]} ->
inner
{:error, reason} ->
bad_path_abort(
"Could not read runtime configuration due to reason: #{inspect(reason)}",
path
)
end
end
defp run_providers(config, %{providers: providers}) do
Enum.reduce(providers, config, fn {provider, state}, acc ->
try do
provider.load(acc, state)
catch
kind, error ->
IO.puts(:stderr, "ERROR! Config provider #{inspect(provider)} failed with:")
IO.puts(:stderr, Exception.format(kind, error, __STACKTRACE__))
:erlang.raise(kind, error, __STACKTRACE__)
else
term when is_list(term) ->
term
term ->
abort("Expected provider #{inspect(provider)} to return a list, got: #{inspect(term)}")
end
end)
end
defp write_config!(config, path) do
contents = :io_lib.format("%% coding: utf-8~n~tw.~n", [config])
case File.write(path, contents, [:utf8]) do
:ok ->
:ok
{:error, reason} ->
bad_path_abort(
"Could not write runtime configuration due to reason: #{inspect(reason)}",
path
)
end
end
defp bad_path_abort(msg, path) do
abort(
msg <>
". Please make sure #{inspect(path)} is writable and accessible " <>
"or choose a different path"
)
end
defp abort(msg) do
IO.puts(:stderr, "ERROR! " <> msg)
raise(msg)
end
end
-87
View File
@@ -1,87 +0,0 @@
defmodule Config.Reader do
@moduledoc """
API for reading config files defined with `Config`.
## As a provider
`Config.Reader` can also be used as a `Config.Provider`.
When used as a provider, it expects a single argument:
which the configuration path (as outlined in
`t:Config.Provider.config_path/0`) for the configuration
to be read and loaded during the system boot.
"""
@behaviour Config.Provider
@impl true
def init(path) do
Config.Provider.validate_config_path!(path)
path
end
@impl true
def load(config, path) do
merge(config, path |> Config.Provider.resolve_config_path!() |> read!())
end
@doc """
Reads the configuration file.
The same as `read_imports!/2` but only returns the configuration
in the given file, without returning the imported paths.
It exists for convenience purposes. For example, you could
invoke it inside your `mix.exs` to read some external data
you decided to move to a configuration file:
releases: Config.Reader.read!("rel/releases.exs")
"""
@doc since: "1.9.0"
@spec read!(Path.t(), [Path.t()]) :: keyword
def read!(file, imported_paths \\ [])
when is_binary(file) and is_list(imported_paths) do
Config.__eval__!(file, imported_paths) |> elem(0)
end
@doc """
Reads the given configuration file alongside its imports.
It accepts a list of `imported_paths` that should raise if attempted
to be imported again (to avoid recursive imports).
It returns a tuple with the configuration and the imported paths.
"""
@doc since: "1.9.0"
@spec read_imports!(Path.t(), [Path.t()]) :: {keyword, [Path.t()]}
def read_imports!(file, imported_paths \\ [])
when is_binary(file) and is_list(imported_paths) do
Config.__eval__!(file, imported_paths)
end
@doc """
Merges two configurations.
The configurations are merged together with the values in
the second one having higher preference than the first in
case of conflicts. In case both values are set to keyword
lists, it deep merges them.
## Examples
iex> Config.Reader.merge([app: [k: :v1]], [app: [k: :v2]])
[app: [k: :v2]]
iex> Config.Reader.merge([app: [k: [v1: 1, v2: 2]]], [app: [k: [v2: :a, v3: :b]]])
[app: [k: [v1: 1, v2: :a, v3: :b]]]
iex> Config.Reader.merge([app1: []], [app2: []])
[app1: [], app2: []]
"""
@doc since: "1.9.0"
@spec merge(keyword, keyword) :: keyword
def merge(config1, config2) when is_list(config1) and is_list(config2) do
Config.__merge__(config1, config2)
end
end
+76 -118
View File
@@ -1,6 +1,6 @@
defmodule Dict do
@moduledoc ~S"""
Generic API for dictionaries.
WARNING: this module is deprecated.
If you need a general dictionary, use the `Map` module.
If you need to manipulate keyword lists, use `Keyword`.
@@ -9,24 +9,50 @@ defmodule Dict do
`new` function in the respective modules.
"""
@moduledoc deprecated: "Use Map or Keyword modules instead"
@type key :: any
@type value :: any
@type t :: list | map
message =
"Use the Map module for working with maps or the Keyword module for working with keyword lists"
# TODO: Remove callbacks on 1.3
# TODO: Deprecate every function on 1.3
@callback new :: t
@callback delete(t, key) :: t
@callback drop(t, Enum.t) :: t
@callback equal?(t, t) :: boolean
@callback get(t, key) :: value
@callback get(t, key, value) :: value
@callback get_lazy(t, key, (() -> value)) :: value
@callback get_and_update(t, key, (value -> {value, value})) :: {value, t}
@callback fetch(t, key) :: {:ok, value} | :error
@callback fetch!(t, key) :: value | no_return
@callback has_key?(t, key) :: boolean
@callback keys(t) :: [key]
@callback merge(t, t) :: t
@callback merge(t, t, (key, value, value -> value)) :: t
@callback pop(t, key) :: {value, t}
@callback pop(t, key, value) :: {value, t}
@callback pop_lazy(t, key, (() -> value)) :: {value, t}
@callback put(t, key, value) :: t
@callback put_new(t, key, value) :: t
@callback put_new_lazy(t, key, (() -> value)) :: t
@callback size(t) :: non_neg_integer()
@callback split(t, Enum.t) :: {t, t}
@callback take(t, Enum.t) :: t
@callback to_list(t) :: list()
@callback update(t, key, value, (value -> value)) :: t
@callback update!(t, key, (value -> value)) :: t | no_return
@callback values(t) :: list(value)
@deprecated message
defmacro __using__(_) do
# Use this import to guarantee proper code expansion
import Kernel, except: [size: 1]
%{file: file, line: line} = __CALLER__
:elixir_errors.warn(line, file, "the Dict module is deprecated")
quote do
message = "Use maps and the Map module instead"
@behaviour Dict
@deprecated message
def get(dict, key, default \\ nil) do
case fetch(dict, key) do
{:ok, value} -> value
@@ -34,7 +60,6 @@ defmodule Dict do
end
end
@deprecated message
def get_lazy(dict, key, fun) when is_function(fun, 0) do
case fetch(dict, key) do
{:ok, value} -> value
@@ -42,14 +67,12 @@ defmodule Dict do
end
end
@deprecated message
def get_and_update(dict, key, fun) do
current_value = get(dict, key)
{get, new_value} = fun.(current_value)
{get, put(dict, key, new_value)}
end
@deprecated message
def fetch!(dict, key) do
case fetch(dict, key) do
{:ok, value} -> value
@@ -57,35 +80,30 @@ defmodule Dict do
end
end
@deprecated message
def has_key?(dict, key) do
match?({:ok, _}, fetch(dict, key))
match? {:ok, _}, fetch(dict, key)
end
@deprecated message
def put_new(dict, key, value) do
case has_key?(dict, key) do
true -> dict
true -> dict
false -> put(dict, key, value)
end
end
@deprecated message
def put_new_lazy(dict, key, fun) when is_function(fun, 0) do
case has_key?(dict, key) do
true -> dict
true -> dict
false -> put(dict, key, fun.())
end
end
@deprecated message
def drop(dict, keys) do
Enum.reduce(keys, dict, &delete(&2, &1))
end
@deprecated message
def take(dict, keys) do
Enum.reduce(keys, new(), fn key, acc ->
Enum.reduce(keys, new, fn key, acc ->
case fetch(dict, key) do
{:ok, value} -> put(acc, key, value)
:error -> acc
@@ -93,49 +111,41 @@ defmodule Dict do
end)
end
@deprecated message
def to_list(dict) do
reduce(dict, {:cont, []}, fn kv, acc -> {:cont, [kv | acc]} end)
|> elem(1)
|> :lists.reverse()
reduce(dict, {:cont, []}, fn
kv, acc -> {:cont, [kv|acc]}
end) |> elem(1) |> :lists.reverse
end
@deprecated message
def keys(dict) do
reduce(dict, {:cont, []}, fn {k, _}, acc -> {:cont, [k | acc]} end)
|> elem(1)
|> :lists.reverse()
reduce(dict, {:cont, []}, fn
{k, _}, acc -> {:cont, [k|acc]}
end) |> elem(1) |> :lists.reverse
end
@deprecated message
def values(dict) do
reduce(dict, {:cont, []}, fn {_, v}, acc -> {:cont, [v | acc]} end)
|> elem(1)
|> :lists.reverse()
reduce(dict, {:cont, []}, fn
{_, v}, acc -> {:cont, [v|acc]}
end) |> elem(1) |> :lists.reverse
end
@deprecated message
def equal?(dict1, dict2) do
# Use this import to avoid conflicts in the user code
import Kernel, except: [size: 1]
case size(dict1) == size(dict2) do
false ->
false
true ->
reduce(dict1, {:cont, true}, fn {k, v}, _acc ->
false -> false
true ->
reduce(dict1, {:cont, true}, fn({k, v}, _acc) ->
case fetch(dict2, k) do
{:ok, ^v} -> {:cont, true}
_ -> {:halt, false}
end
end)
|> elem(1)
end) |> elem(1)
end
end
@deprecated message
def merge(dict1, dict2, fun \\ fn _k, _v1, v2 -> v2 end) do
def merge(dict1, dict2, fun \\ fn(_k, _v1, v2) -> v2 end) do
# Use this import to avoid conflicts in the user code
import Kernel, except: [size: 1]
@@ -147,182 +157,144 @@ defmodule Dict do
reduce(dict2, {:cont, dict1}, fn {k, v2}, acc ->
{:cont, update(acc, k, v2, &fun.(k, &1, v2))}
end)
end
|> elem(1)
end |> elem(1)
end
@deprecated message
def update(dict, key, initial, fun) do
case fetch(dict, key) do
{:ok, value} ->
put(dict, key, fun.(value))
:error ->
put(dict, key, initial)
end
end
@deprecated message
def update!(dict, key, fun) do
case fetch(dict, key) do
{:ok, value} ->
put(dict, key, fun.(value))
:error ->
raise KeyError, key: key, term: dict
end
end
@deprecated message
def pop(dict, key, default \\ nil) do
case fetch(dict, key) do
{:ok, value} ->
{value, delete(dict, key)}
:error ->
{default, dict}
end
end
@deprecated message
def pop_lazy(dict, key, fun) when is_function(fun, 0) do
case fetch(dict, key) do
{:ok, value} ->
{value, delete(dict, key)}
:error ->
{fun.(), dict}
end
end
@deprecated message
def split(dict, keys) do
Enum.reduce(keys, {new(), dict}, fn key, {inc, exc} = acc ->
Enum.reduce(keys, {new, dict}, fn key, {inc, exc} = acc ->
case fetch(exc, key) do
{:ok, value} ->
{put(inc, key, value), delete(exc, key)}
:error ->
acc
end
end)
end
defoverridable merge: 2,
merge: 3,
equal?: 2,
to_list: 1,
keys: 1,
values: 1,
take: 2,
drop: 2,
get: 2,
get: 3,
fetch!: 2,
has_key?: 2,
put_new: 3,
pop: 2,
pop: 3,
split: 2,
update: 4,
update!: 3,
get_and_update: 3,
get_lazy: 3,
pop_lazy: 3,
put_new_lazy: 3
defoverridable merge: 2, merge: 3, equal?: 2, to_list: 1, keys: 1,
values: 1, take: 2, drop: 2, get: 2, get: 3, fetch!: 2,
has_key?: 2, put_new: 3, pop: 2, pop: 3, split: 2,
update: 4, update!: 3, get_and_update: 3, get_lazy: 3,
pop_lazy: 3, put_new_lazy: 3
end
end
defmacrop target(dict) do
quote do
case unquote(dict) do
%module{} -> module
%{} -> Map
dict when is_list(dict) -> Keyword
dict -> unsupported_dict(dict)
%{__struct__: x} when is_atom(x) ->
x
%{} ->
Map
x when is_list(x) ->
Keyword
x ->
unsupported_dict(x)
end
end
end
@deprecated message
@spec keys(t) :: [key]
def keys(dict) do
target(dict).keys(dict)
end
@deprecated message
@spec values(t) :: [value]
def values(dict) do
target(dict).values(dict)
end
@deprecated message
@spec size(t) :: non_neg_integer
def size(dict) do
target(dict).size(dict)
end
@deprecated message
@spec has_key?(t, key) :: boolean
def has_key?(dict, key) do
target(dict).has_key?(dict, key)
end
@deprecated message
@spec get(t, key, value) :: value
def get(dict, key, default \\ nil) do
target(dict).get(dict, key, default)
end
@deprecated message
@spec get_lazy(t, key, (() -> value)) :: value
def get_lazy(dict, key, fun) do
target(dict).get_lazy(dict, key, fun)
end
@deprecated message
@spec get_and_update(t, key, (value -> {value, value})) :: {value, t}
def get_and_update(dict, key, fun) do
target(dict).get_and_update(dict, key, fun)
end
@deprecated message
@spec fetch(t, key) :: value
def fetch(dict, key) do
target(dict).fetch(dict, key)
end
@deprecated message
@spec fetch!(t, key) :: value
@spec fetch!(t, key) :: value | no_return
def fetch!(dict, key) do
target(dict).fetch!(dict, key)
end
@deprecated message
@spec put(t, key, value) :: t
def put(dict, key, val) do
target(dict).put(dict, key, val)
end
@deprecated message
@spec put_new(t, key, value) :: t
def put_new(dict, key, val) do
target(dict).put_new(dict, key, val)
end
@deprecated message
@spec put_new_lazy(t, key, (() -> value)) :: t
def put_new_lazy(dict, key, fun) do
target(dict).put_new_lazy(dict, key, fun)
end
@deprecated message
@spec delete(t, key) :: t
def delete(dict, key) do
target(dict).delete(dict, key)
end
@deprecated message
@spec merge(t, t) :: t
def merge(dict1, dict2) do
target1 = target(dict1)
@@ -331,11 +303,10 @@ defmodule Dict do
if target1 == target2 do
target1.merge(dict1, dict2)
else
do_merge(target1, dict1, dict2, fn _k, _v1, v2 -> v2 end)
do_merge(target1, dict1, dict2, fn(_k, _v1, v2) -> v2 end)
end
end
@deprecated message
@spec merge(t, t, (key, value, value -> value)) :: t
def merge(dict1, dict2, fun) do
target1 = target(dict1)
@@ -349,61 +320,51 @@ defmodule Dict do
end
defp do_merge(target1, dict1, dict2, fun) do
Enumerable.reduce(dict2, {:cont, dict1}, fn {k, v}, acc ->
{:cont, target1.update(acc, k, v, fn other -> fun.(k, other, v) end)}
end)
|> elem(1)
Enumerable.reduce(dict2, {:cont, dict1}, fn({k, v}, acc) ->
{:cont, target1.update(acc, k, v, fn(other) -> fun.(k, other, v) end)}
end) |> elem(1)
end
@deprecated message
@spec pop(t, key, value) :: {value, t}
def pop(dict, key, default \\ nil) do
target(dict).pop(dict, key, default)
end
@deprecated message
@spec pop_lazy(t, key, (() -> value)) :: {value, t}
def pop_lazy(dict, key, fun) do
target(dict).pop_lazy(dict, key, fun)
end
@deprecated message
@spec update!(t, key, (value -> value)) :: t
def update!(dict, key, fun) do
target(dict).update!(dict, key, fun)
end
@deprecated message
@spec update(t, key, value, (value -> value)) :: t
def update(dict, key, initial, fun) do
target(dict).update(dict, key, initial, fun)
end
@deprecated message
@spec split(t, [key]) :: {t, t}
def split(dict, keys) do
target(dict).split(dict, keys)
end
@deprecated message
@spec drop(t, [key]) :: t
def drop(dict, keys) do
target(dict).drop(dict, keys)
end
@deprecated message
@spec take(t, [key]) :: t
def take(dict, keys) do
target(dict).take(dict, keys)
end
@deprecated message
@spec empty(t) :: t
def empty(dict) do
target(dict).empty(dict)
end
@deprecated message
@spec equal?(t, t) :: boolean
def equal?(dict1, dict2) do
target1 = target(dict1)
@@ -414,27 +375,24 @@ defmodule Dict do
target1.equal?(dict1, dict2)
target1.size(dict1) == target2.size(dict2) ->
Enumerable.reduce(dict2, {:cont, true}, fn {k, v}, _acc ->
Enumerable.reduce(dict2, {:cont, true}, fn({k, v}, _acc) ->
case target1.fetch(dict1, k) do
{:ok, ^v} -> {:cont, true}
_ -> {:halt, false}
_ -> {:halt, false}
end
end)
|> elem(1)
end) |> elem(1)
true ->
false
end
end
@deprecated message
@spec to_list(t) :: list
def to_list(dict) do
target(dict).to_list(dict)
end
@spec unsupported_dict(t) :: no_return
defp unsupported_dict(dict) do
raise ArgumentError, "unsupported dict: #{inspect(dict)}"
raise ArgumentError, "unsupported dict: #{inspect dict}"
end
end
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+6 -24
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@@ -12,7 +12,7 @@ defmodule File.Stat do
* `size` - size of file in bytes.
* `type` - `:device | :directory | :regular | :other | :symlink`; the type of the
* `type` - `:device | :directory | :regular | :other`; the type of the
file.
* `access` - `:read | :write | :read_write | :none`; the current system
@@ -32,7 +32,7 @@ defmodule File.Stat do
systems which have no concept of links.
* `major_device` - identifies the file system where the file is located.
In Windows, the number indicates a drive as follows: 0 means A:, 1 means
In windows, the number indicates a drive as follows: 0 means A:, 1 means
B:, and so on.
* `minor_device` - only valid for character devices on Unix. In all other
@@ -53,32 +53,16 @@ defmodule File.Stat do
"""
record = Record.extract(:file_info, from_lib: "kernel/include/file.hrl")
keys = :lists.map(&elem(&1, 0), record)
vals = :lists.map(&{&1, [], nil}, keys)
pairs = :lists.zip(keys, vals)
keys = :lists.map(&elem(&1, 0), record)
vals = :lists.map(&{&1, [], nil}, keys)
pairs = :lists.zip(keys, vals)
defstruct keys
@type t :: %__MODULE__{
size: non_neg_integer(),
type: :device | :directory | :regular | :other | :symlink,
access: :read | :write | :read_write | :none,
atime: :calendar.datetime() | integer(),
mtime: :calendar.datetime() | integer(),
ctime: :calendar.datetime() | integer(),
mode: non_neg_integer(),
links: non_neg_integer(),
major_device: non_neg_integer(),
minor_device: non_neg_integer(),
inode: non_neg_integer(),
uid: non_neg_integer(),
gid: non_neg_integer()
}
@type t :: %__MODULE__{}
@doc """
Converts a `File.Stat` struct to a `:file_info` record.
"""
@spec to_record(t()) :: :file.file_info()
def to_record(%File.Stat{unquote_splicing(pairs)}) do
{:file_info, unquote_splicing(vals)}
end
@@ -86,9 +70,7 @@ defmodule File.Stat do
@doc """
Converts a `:file_info` record into a `File.Stat`.
"""
@spec from_record(:file.file_info()) :: t()
def from_record(file_info)
def from_record({:file_info, unquote_splicing(vals)}) do
%File.Stat{unquote_splicing(pairs)}
end
+21 -113
View File
@@ -7,7 +7,7 @@ defmodule File.Stream do
* `path` - the file path
* `modes` - the file modes
* `raw` - a boolean indicating if bin functions should be used
* `line_or_bytes` - if reading should read lines or a given number of bytes
* `line_or_bytes` - if reading should read lines or a given amount of bytes
"""
@@ -20,16 +20,14 @@ defmodule File.Stream do
raw = :lists.keyfind(:encoding, 1, modes) == false
modes =
case raw do
true ->
case :lists.keyfind(:read_ahead, 1, modes) do
{:read_ahead, false} -> [:raw | :lists.keydelete(:read_ahead, 1, modes)]
{:read_ahead, _} -> [:raw | modes]
false -> [:raw, :read_ahead | modes]
end
false ->
modes
if raw do
if :lists.keyfind(:read_ahead, 1, modes) == {:read_ahead, false} do
[:raw|modes]
else
[:raw, :read_ahead|modes]
end
else
modes
end
%File.Stream{path: path, modes: modes, raw: raw, line_or_bytes: line_or_bytes}
@@ -37,12 +35,11 @@ defmodule File.Stream do
defimpl Collectable do
def into(%{path: path, modes: modes, raw: raw} = stream) do
modes = for mode <- modes, mode not in [:read], do: mode
modes = for mode <- modes, not mode in [:read], do: mode
case :file.open(path, [:write | modes]) do
case :file.open(path, [:write|modes]) do
{:ok, device} ->
{:ok, into(device, stream, raw)}
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
end
@@ -52,16 +49,14 @@ defmodule File.Stream do
fn
:ok, {:cont, x} ->
case raw do
true -> IO.binwrite(device, x)
true -> IO.binwrite(device, x)
false -> IO.write(device, x)
end
:ok, :done ->
# If delayed_write option is used and the last write failed will
# MatchError here as {:error, _} is returned.
:ok = :file.close(device)
stream
:ok, :halt ->
# If delayed_write option is used and the last write failed will
# MatchError here as {:error, _} is returned.
@@ -71,55 +66,27 @@ defmodule File.Stream do
end
defimpl Enumerable do
@read_ahead_size 64 * 1024
def reduce(%{path: path, modes: modes, line_or_bytes: line_or_bytes, raw: raw}, acc, fun) do
start_fun = fn ->
case :file.open(path, read_modes(modes)) do
{:ok, device} ->
if :trim_bom in modes, do: trim_bom(device, raw) |> elem(0), else: device
modes = for mode <- modes, not mode in [:write, :append], do: mode
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
start_fun =
fn ->
case :file.open(path, modes) do
{:ok, device} -> device
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
end
end
end
next_fun =
case raw do
true -> &IO.each_binstream(&1, line_or_bytes)
true -> &IO.each_binstream(&1, line_or_bytes)
false -> &IO.each_stream(&1, line_or_bytes)
end
Stream.resource(start_fun, next_fun, &:file.close/1).(acc, fun)
end
def count(%{path: path, modes: modes, line_or_bytes: :line} = stream) do
pattern = :binary.compile_pattern("\n")
counter = &count_lines(&1, path, pattern, read_function(stream), 0)
case File.open(path, read_modes(modes), counter) do
{:ok, count} ->
{:ok, count}
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
end
end
def count(%{path: path, line_or_bytes: bytes, raw: true, modes: modes}) do
case File.stat(path) do
{:ok, %{size: 0}} ->
{:error, __MODULE__}
{:ok, %{size: size}} ->
remainder = if rem(size, bytes) == 0, do: 0, else: 1
{:ok, div(size, bytes) + remainder - count_raw_bom(path, modes)}
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
end
end
def count(_stream) do
{:error, __MODULE__}
end
@@ -127,64 +94,5 @@ defmodule File.Stream do
def member?(_stream, _term) do
{:error, __MODULE__}
end
def slice(_stream) do
{:error, __MODULE__}
end
defp count_raw_bom(path, modes) do
if :trim_bom in modes do
File.open!(path, read_modes(modes), &(&1 |> trim_bom(true) |> elem(1)))
else
0
end
end
defp trim_bom(device, true) do
bom_length = device |> IO.binread(4) |> bom_length()
{:ok, new_pos} = :file.position(device, bom_length)
{device, new_pos}
end
defp trim_bom(device, false) do
# Or we read the bom in the correct amount or it isn't there
case bom_length(IO.read(device, 1)) do
0 ->
{:ok, _} = :file.position(device, 0)
{device, 0}
_ ->
{device, 1}
end
end
defp bom_length(<<239, 187, 191, _rest::binary>>), do: 3
defp bom_length(<<254, 255, _rest::binary>>), do: 2
defp bom_length(<<255, 254, _rest::binary>>), do: 2
defp bom_length(<<0, 0, 254, 255, _rest::binary>>), do: 4
defp bom_length(<<254, 255, 0, 0, _rest::binary>>), do: 4
defp bom_length(_binary), do: 0
defp read_modes(modes) do
for mode <- modes, mode not in [:write, :append, :trim_bom], do: mode
end
defp count_lines(device, path, pattern, read, count) do
case read.(device) do
data when is_binary(data) ->
count_lines(device, path, pattern, read, count + count_lines(data, pattern))
:eof ->
count
{:error, reason} ->
raise File.Error, reason: reason, action: "stream", path: path
end
end
defp count_lines(data, pattern), do: length(:binary.matches(data, pattern))
defp read_function(%{raw: true}), do: &IO.binread(&1, @read_ahead_size)
defp read_function(%{raw: false}), do: &IO.read(&1, @read_ahead_size)
end
end
+102 -370
View File
@@ -2,69 +2,30 @@ import Kernel, except: [round: 1]
defmodule Float do
@moduledoc """
Functions for working with floating-point numbers.
## Kernel functions
There are functions related to floating-point numbers on the `Kernel` module
too. Here is a list of them:
* `Kernel.round/1`: rounds a number to the nearest integer.
* `Kernel.trunc/1`: returns the integer part of a number.
## Known issues
There are some very well known problems with floating-point numbers
and arithmetics due to the fact most decimal fractions cannot be
represented by a floating-point binary and most operations are not exact,
but operate on approximations. Those issues are not specific
to Elixir, they are a property of floating point representation itself.
For example, the numbers 0.1 and 0.01 are two of them, what means the result
of squaring 0.1 does not give 0.01 neither the closest representable. Here is
what happens in this case:
* The closest representable number to 0.1 is 0.1000000014
* The closest representable number to 0.01 is 0.0099999997
* Doing 0.1 * 0.1 should return 0.01, but because 0.1 is actually 0.1000000014,
the result is 0.010000000000000002, and because this is not the closest
representable number to 0.01, you'll get the wrong result for this operation
There are also other known problems like flooring or rounding numbers. See
`round/2` and `floor/2` for more details about them.
To learn more about floating-point arithmetic visit:
* [0.30000000000000004.com](http://0.30000000000000004.com/)
* [What Every Programmer Should Know About Floating-Point Arithmetic](https://floating-point-gui.de/)
Functions for working with floating point numbers.
"""
import Bitwise
@power_of_2_to_52 4_503_599_627_370_496
@precision_range 0..15
@type precision_range :: 0..15
@doc """
Parses a binary into a float.
If successful, returns a tuple in the form of `{float, remainder_of_binary}`;
If successful, returns a tuple of the form `{float, remainder_of_binary}`;
when the binary cannot be coerced into a valid float, the atom `:error` is
returned.
If the size of float exceeds the maximum size of `1.7976931348623157e+308`,
the `ArgumentError` exception is raised.
If you want to convert a string-formatted float directly to a float,
If a float formatted string wants to be directly converted to a float,
`String.to_float/1` can be used instead.
## Examples
iex> Float.parse("34")
{34.0, ""}
iex> Float.parse("34.25")
{34.25, ""}
iex> Float.parse("56.5xyz")
{56.5, "xyz"}
@@ -88,98 +49,66 @@ defmodule Float do
parse_unsigned(binary)
end
defp parse_unsigned(<<digit, rest::binary>>) when digit in ?0..?9,
do: parse_unsigned(rest, false, false, <<digit>>)
defp parse_unsigned(<<digit, rest::binary>>) when digit in ?0..?9, do:
parse_unsigned(rest, false, false, <<digit>>)
defp parse_unsigned(binary) when is_binary(binary), do: :error
defp parse_unsigned(binary) when is_binary(binary), do:
:error
defp parse_unsigned(<<digit, rest::binary>>, dot?, e?, acc) when digit in ?0..?9,
do: parse_unsigned(rest, dot?, e?, <<acc::binary, digit>>)
defp parse_unsigned(<<digit, rest::binary>>, dot?, e?, acc) when digit in ?0..?9, do:
parse_unsigned(rest, dot?, e?, <<acc::binary, digit>>)
defp parse_unsigned(<<?., digit, rest::binary>>, false, false, acc) when digit in ?0..?9,
do: parse_unsigned(rest, true, false, <<acc::binary, ?., digit>>)
defp parse_unsigned(<<?., digit, rest::binary>>, false, false, acc) when digit in ?0..?9, do:
parse_unsigned(rest, true, false, <<acc::binary, ?., digit>>)
defp parse_unsigned(<<exp_marker, digit, rest::binary>>, dot?, false, acc)
when exp_marker in 'eE' and digit in ?0..?9,
do: parse_unsigned(rest, true, true, <<add_dot(acc, dot?)::binary, ?e, digit>>)
defp parse_unsigned(<<exp_marker, digit, rest::binary>>, dot?, false, acc) when exp_marker in 'eE' and digit in ?0..?9, do:
parse_unsigned(rest, true, true, <<add_dot(acc, dot?)::binary, ?e, digit>>)
defp parse_unsigned(<<exp_marker, sign, digit, rest::binary>>, dot?, false, acc)
when exp_marker in 'eE' and sign in '-+' and digit in ?0..?9,
do: parse_unsigned(rest, true, true, <<add_dot(acc, dot?)::binary, ?e, sign, digit>>)
defp parse_unsigned(<<exp_marker, sign, digit, rest::binary>>, dot?, false, acc) when exp_marker in 'eE' and sign in '-+' and digit in ?0..?9, do:
parse_unsigned(rest, true, true, <<add_dot(acc, dot?)::binary, ?e, sign, digit>>)
defp parse_unsigned(rest, dot?, _e?, acc),
do: {:erlang.binary_to_float(add_dot(acc, dot?)), rest}
defp parse_unsigned(rest, dot?, _e?, acc), do:
{:erlang.binary_to_float(add_dot(acc, dot?)), rest}
defp add_dot(acc, true), do: acc
defp add_dot(acc, true), do: acc
defp add_dot(acc, false), do: acc <> ".0"
@doc """
Rounds a float to the largest number less than or equal to `num`.
Rounds a float to the largest integer less than or equal to `num`.
`floor/2` also accepts a precision to round a floating-point value down
`floor/2` also accepts a precision to round a floating point value down
to an arbitrary number of fractional digits (between 0 and 15).
The operation is performed on the binary floating point, without a
conversion to decimal.
This function always returns a float. `Kernel.trunc/1` may be used instead to
truncate the result to an integer afterwards.
## Known issues
The behaviour of `floor/2` for floats can be surprising. For example:
iex> Float.floor(12.52, 2)
12.51
One may have expected it to floor to 12.52. This is not a bug.
Most decimal fractions cannot be represented as a binary floating point
and therefore the number above is internally represented as 12.51999999,
which explains the behaviour above.
## Examples
iex> Float.floor(34.25)
34.0
iex> Float.floor(-56.5)
-57.0
iex> Float.floor(34.259, 2)
34.25
"""
@spec floor(float, precision_range) :: float
def floor(number, precision \\ 0)
def floor(number, 0) when is_float(number) do
:math.floor(number)
end
def floor(number, precision) when is_float(number) and precision in @precision_range do
round(number, precision, :floor)
end
def floor(number, precision) when is_float(number) do
raise ArgumentError, invalid_precision_message(precision)
@spec floor(float, 0..15) :: float
def floor(number, precision \\ 0) when is_float(number) and precision in 0..15 do
power = power_of_10(precision)
number = number * power
truncated = trunc(number)
variance = if number - truncated < 0, do: -1.0, else: 0.0
(truncated + variance) / power
end
@doc """
Rounds a float to the smallest integer greater than or equal to `num`.
`ceil/2` also accepts a precision to round a floating-point value down
`ceil/2` also accepts a precision to round a floating point value down
to an arbitrary number of fractional digits (between 0 and 15).
The operation is performed on the binary floating point, without a
conversion to decimal.
The behaviour of `ceil/2` for floats can be surprising. For example:
iex> Float.ceil(-12.52, 2)
-12.51
One may have expected it to ceil to -12.52. This is not a bug.
Most decimal fractions cannot be represented as a binary floating point
and therefore the number above is internally represented as -12.51999999,
which explains the behaviour above.
This function always returns floats. `Kernel.trunc/1` may be used instead to
truncate the result to an integer afterwards.
@@ -187,333 +116,136 @@ defmodule Float do
iex> Float.ceil(34.25)
35.0
iex> Float.ceil(-56.5)
-56.0
iex> Float.ceil(34.251, 2)
34.26
"""
@spec ceil(float, precision_range) :: float
def ceil(number, precision \\ 0)
def ceil(number, 0) when is_float(number) do
:math.ceil(number)
end
def ceil(number, precision) when is_float(number) and precision in @precision_range do
round(number, precision, :ceil)
end
def ceil(number, precision) when is_float(number) do
raise ArgumentError, invalid_precision_message(precision)
@spec ceil(float, 0..15) :: float
def ceil(number, precision \\ 0) when is_float(number) and precision in 0..15 do
power = power_of_10(precision)
number = number * power
truncated = trunc(number)
variance = if number - truncated > 0, do: 1.0, else: 0.0
(truncated + variance) / power
end
@doc """
Rounds a floating-point value to an arbitrary number of fractional
digits (between 0 and 15).
The rounding direction always ties to half up. The operation is
performed on the binary floating point, without a conversion to decimal.
Rounds a floating point value to an arbitrary number of fractional digits
(between 0 and 15).
This function only accepts floats and always returns a float. Use
`Kernel.round/1` if you want a function that accepts both floats
and integers and always returns an integer.
## Known issues
The behaviour of `round/2` for floats can be surprising. For example:
iex> Float.round(5.5675, 3)
5.567
One may have expected it to round to the half up 5.568. This is not a bug.
Most decimal fractions cannot be represented as a binary floating point
and therefore the number above is internally represented as 5.567499999,
which explains the behaviour above. If you want exact rounding for decimals,
you must use a decimal library. The behaviour above is also in accordance
to reference implementations, such as "Correctly Rounded Binary-Decimal and
Decimal-Binary Conversions" by David M. Gay.
`Kernel.round/1` if you want a function that accepts both floats and integers
and always returns an integer.
## Examples
iex> Float.round(12.5)
13.0
iex> Float.round(5.5674, 3)
5.567
iex> Float.round(5.5675, 3)
5.567
5.568
iex> Float.round(-5.5674, 3)
-5.567
iex> Float.round(-5.5675)
-6.0
iex> Float.round(12.341444444444441, 15)
12.341444444444441
iex> Float.round(-5.5675, 3)
-5.568
"""
@spec round(float, precision_range) :: float
# This implementation is slow since it relies on big integers.
# Faster implementations are available on more recent papers
# and could be implemented in the future.
def round(float, precision \\ 0)
def round(float, 0) when is_float(float) do
float |> :erlang.round() |> :erlang.float()
@spec round(float, 0..15) :: float
def round(number, precision \\ 0) when is_float(number) and precision in 0..15 do
power = power_of_10(precision)
Kernel.round(number * power) / power
end
def round(float, precision) when is_float(float) and precision in @precision_range do
round(float, precision, :half_up)
end
def round(float, precision) when is_float(float) do
raise ArgumentError, invalid_precision_message(precision)
end
defp round(0.0, _precision, _rounding), do: 0.0
defp round(float, precision, rounding) do
<<sign::1, exp::11, significant::52-bitstring>> = <<float::float>>
{num, count, _} = decompose(significant, 1)
count = count - exp + 1023
cond do
# Precision beyond 15 digits
count >= 104 ->
case rounding do
:ceil when sign === 0 -> 1 / power_of_10(precision)
:floor when sign === 1 -> -1 / power_of_10(precision)
_ -> 0.0
end
# We are asking more precision than we have
count <= precision ->
float
true ->
# Difference in precision between float and asked precision
# We subtract 1 because we need to calculate the remainder too
diff = count - precision - 1
# Get up to latest so we calculate the remainder
power_of_10 = power_of_10(diff)
# Convert the numerand to decimal base
num = num * power_of_5(count)
# Move to the given precision - 1
num = div(num, power_of_10)
div = div(num, 10)
num = rounding(rounding, sign, num, div)
# Convert back to float without loss
# https://www.exploringbinary.com/correct-decimal-to-floating-point-using-big-integers/
den = power_of_10(precision)
boundary = den <<< 52
cond do
num == 0 ->
0.0
num >= boundary ->
{den, exp} = scale_down(num, boundary, 52)
decimal_to_float(sign, num, den, exp)
true ->
{num, exp} = scale_up(num, boundary, 52)
decimal_to_float(sign, num, den, exp)
end
end
end
defp scale_up(num, boundary, exp) when num >= boundary, do: {num, exp}
defp scale_up(num, boundary, exp), do: scale_up(num <<< 1, boundary, exp - 1)
defp scale_down(num, den, exp) do
new_den = den <<< 1
if num < new_den do
{den >>> 52, exp}
else
scale_down(num, new_den, exp + 1)
end
end
defp decimal_to_float(sign, num, den, exp) do
quo = div(num, den)
rem = num - quo * den
tmp =
case den >>> 1 do
den when rem > den -> quo + 1
den when rem < den -> quo
_ when (quo &&& 1) === 1 -> quo + 1
_ -> quo
end
tmp = tmp - @power_of_2_to_52
<<tmp::float>> = <<sign::1, exp + 1023::11, tmp::52>>
tmp
end
defp rounding(:floor, 1, _num, div), do: div + 1
defp rounding(:ceil, 0, _num, div), do: div + 1
defp rounding(:half_up, _sign, num, div) do
case rem(num, 10) do
rem when rem < 5 -> div
rem when rem >= 5 -> div + 1
end
end
defp rounding(_, _, _, div), do: div
Enum.reduce(0..104, 1, fn x, acc ->
Enum.reduce 0..15, 1, fn x, acc ->
defp power_of_10(unquote(x)), do: unquote(acc)
acc * 10
end)
Enum.reduce(0..104, 1, fn x, acc ->
defp power_of_5(unquote(x)), do: unquote(acc)
acc * 5
end)
end
@doc """
Returns a pair of integers whose ratio is exactly equal
to the original float and with a positive denominator.
Returns a char list which corresponds to the text representation of the given float.
Inlined by the compiler.
## Examples
iex> Float.ratio(0.0)
{0, 1}
iex> Float.ratio(3.14)
{7070651414971679, 2251799813685248}
iex> Float.ratio(-3.14)
{-7070651414971679, 2251799813685248}
iex> Float.ratio(1.5)
{3, 2}
iex> Float.ratio(-1.5)
{-3, 2}
iex> Float.ratio(16.0)
{16, 1}
iex> Float.ratio(-16.0)
{-16, 1}
iex> Float.to_char_list(7.0)
'7.00000000000000000000e+00'
"""
@doc since: "1.4.0"
@spec ratio(float) :: {integer, pos_integer}
def ratio(0.0), do: {0, 1}
def ratio(float) when is_float(float) do
case <<float::float>> do
<<sign::1, 0::11, significant::52-bitstring>> ->
{num, _, den} = decompose(significant, 0)
{sign(sign, num), shift_left(den, 1022)}
<<sign::1, exp::11, significant::52-bitstring>> ->
{num, _, den} = decompose(significant, 1)
num = sign(sign, num)
case exp - 1023 do
exp when exp > 0 ->
{den, exp} = shift_right(den, exp)
{shift_left(num, exp), den}
exp when exp < 0 ->
{num, shift_left(den, -exp)}
0 ->
{num, den}
end
end
@spec to_char_list(float) :: char_list
def to_char_list(float) do
:erlang.float_to_list(float)
end
defp decompose(significant, initial) do
decompose(significant, 1, 0, 2, 1, initial)
end
defp decompose(<<1::1, bits::bitstring>>, count, last_count, power, _last_power, acc) do
decompose(bits, count + 1, count, power <<< 1, power, shift_left(acc, count - last_count) + 1)
end
defp decompose(<<0::1, bits::bitstring>>, count, last_count, power, last_power, acc) do
decompose(bits, count + 1, last_count, power <<< 1, last_power, acc)
end
defp decompose(<<>>, _count, last_count, _power, last_power, acc) do
{acc, last_count, last_power}
end
@compile {:inline, sign: 2, shift_left: 2}
defp sign(0, num), do: num
defp sign(1, num), do: -num
defp shift_left(num, times), do: num <<< times
defp shift_right(num, 0), do: {num, 0}
defp shift_right(1, times), do: {1, times}
defp shift_right(num, times), do: shift_right(num >>> 1, times - 1)
@doc """
Returns a charlist which corresponds to the text representation
Returns a list which corresponds to the text representation
of the given float.
It uses the shortest representation according to algorithm described
in "Printing Floating-Point Numbers Quickly and Accurately" in
Proceedings of the SIGPLAN '96 Conference on Programming Language
Design and Implementation.
## Options
* `:decimals` - number of decimal points to show
* `:scientific` - number of decimal points to show, in scientific format
* `:compact` - when `true`, use the most compact representation (ignored
with the `scientific` option)
## Examples
iex> Float.to_charlist(7.0)
'7.0'
iex> Float.to_char_list 7.1, [decimals: 2, compact: true]
'7.1'
"""
@spec to_charlist(float) :: charlist
def to_charlist(float) when is_float(float) do
:io_lib_format.fwrite_g(float)
@spec to_char_list(float, list) :: char_list
def to_char_list(float, options) do
:erlang.float_to_list(float, expand_compact(options))
end
@doc """
Returns a binary which corresponds to the text representation
of the given float.
It uses the shortest representation according to algorithm described
in "Printing Floating-Point Numbers Quickly and Accurately" in
Proceedings of the SIGPLAN '96 Conference on Programming Language
Design and Implementation.
Inlined by the compiler.
## Examples
iex> Float.to_string(7.0)
"7.0"
"7.00000000000000000000e+00"
"""
@spec to_string(float) :: String.t()
def to_string(float) when is_float(float) do
IO.iodata_to_binary(:io_lib_format.fwrite_g(float))
@spec to_string(float) :: String.t
def to_string(float) do
:erlang.float_to_binary(float)
end
@doc false
@deprecated "Use Float.to_charlist/1 instead"
def to_char_list(float), do: Float.to_charlist(float)
@doc """
Returns a binary which corresponds to the text representation
of `float`.
@doc false
@deprecated "Use :erlang.float_to_list/2 instead"
def to_char_list(float, options) do
:erlang.float_to_list(float, expand_compact(options))
end
## Options
@doc false
@deprecated "Use :erlang.float_to_binary/2 instead"
* `:decimals` - number of decimal points to show
* `:scientific` - number of decimal points to show, in scientific format
* `:compact` - when `true`, use the most compact representation (ignored
with the `scientific` option)
## Examples
iex> Float.to_string 7.1, [decimals: 2, compact: true]
"7.1"
"""
@spec to_string(float, list) :: String.t
def to_string(float, options) do
:erlang.float_to_binary(float, expand_compact(options))
end
defp invalid_precision_message(precision) do
"precision #{precision} is out of valid range of #{inspect(@precision_range)}"
end
defp expand_compact([{:compact, false} | t]), do: expand_compact(t)
defp expand_compact([{:compact, true} | t]), do: [:compact | expand_compact(t)]
defp expand_compact([h | t]), do: [h | expand_compact(t)]
defp expand_compact([]), do: []
defp expand_compact([{:compact, false}|t]), do: expand_compact(t)
defp expand_compact([{:compact, true}|t]), do: [:compact|expand_compact(t)]
defp expand_compact([h|t]), do: [h|expand_compact(t)]
defp expand_compact([]), do: []
end
-137
View File
@@ -1,137 +0,0 @@
defmodule Function do
@moduledoc """
A set of functions for working with functions.
There are two types of captured functions: **external** and **local**.
External functions are functions residing in modules that are captured
with `&/1`, such as `&String.length/1`. Local functions are anonymous functions
defined with `fn/1` or with the capture operator `&/1` using `&1`, `&2`,
and so on as replacements.
"""
@type information ::
:arity
| :env
| :index
| :module
| :name
| :new_index
| :new_uniq
| :pid
| :type
| :uniq
@doc """
Captures the given function.
Inlined by the compiler.
## Examples
iex> Function.capture(String, :length, 1)
&String.length/1
"""
@doc since: "1.7.0"
@spec capture(module, atom, arity) :: fun
def capture(module, function_name, arity) do
:erlang.make_fun(module, function_name, arity)
end
@doc """
Returns a keyword list with information about a function.
The returned keys (with the corresponding possible values) for
all types of functions (local and external) are the following:
* `:type` - `:local` (for anonymous functions) or `:external` (for
named functions).
* `:module` - an atom which is the module where the function is defined when
anonymous or the module which the function refers to when it's a named function.
* `:arity` - (integer) the number of arguments the function is to be called with.
* `:name` - (atom) the name of the function.
* `:env` - a list of the environment or free variables. For named
functions, the returned list is always empty.
When `fun` is an anonymous function (that is, the type is `:local`), the following
additional keys are returned:
* `:pid` - PID of the process that originally created the function.
* `:index` - (integer) an index into the module function table.
* `:new_index` - (integer) an index into the module function table.
* `:new_uniq` - (binary) a unique value for this function. It's
calculated from the compiled code for the entire module.
* `:uniq` - (integer) a unique value for this function. This integer is
calculated from the compiled code for the entire module.
**Note**: this function must be used only for debugging purposes.
Inlined by the compiler.
## Examples
iex> fun = fn x -> x end
iex> info = Function.info(fun)
iex> Keyword.get(info, :arity)
1
iex> Keyword.get(info, :type)
:local
iex> fun = &String.length/1
iex> info = Function.info(fun)
iex> Keyword.get(info, :type)
:external
iex> Keyword.get(info, :name)
:length
"""
@doc since: "1.7.0"
@spec info(fun) :: [{information, term}]
def info(fun), do: :erlang.fun_info(fun)
@doc """
Returns a specific information about the function.
The returned information is a two-element tuple in the shape of
`{info, value}`.
For any function, the information asked for can be any of the atoms
`:module`, `:name`, `:arity`, `:env`, or `:type`.
For anonymous functions, there is also information about any of the
atoms `:index`, `:new_index`, `:new_uniq`, `:uniq`, and `:pid`.
For a named function, the value of any of these items is always the
atom `:undefined`.
For more information on each of the possible returned values, see
`info/1`.
Inlined by the compiler.
## Examples
iex> f = fn x -> x end
iex> Function.info(f, :arity)
{:arity, 1}
iex> Function.info(f, :type)
{:type, :local}
iex> fun = &String.length/1
iex> Function.info(fun, :name)
{:name, :length}
iex> Function.info(fun, :pid)
{:pid, :undefined}
"""
@doc since: "1.7.0"
@spec info(fun, item) :: {item, term} when item: information
def info(fun, item), do: :erlang.fun_info(fun, item)
end
File diff suppressed because it is too large Load Diff
+22 -22
View File
@@ -1,8 +1,19 @@
defmodule GenEvent.Stream do
@moduledoc false
@moduledoc """
Defines a `GenEvent` stream.
This is a struct returned by `GenEvent.stream/2`. The struct is public and
contains the following fields:
* `:manager` - the manager reference given to `GenEvent.stream/2`
* `:timeout` - the timeout between events, defaults to `:infinity`
"""
defstruct manager: nil, timeout: :infinity
@type t :: %__MODULE__{manager: GenEvent.manager(), timeout: timeout}
@type t :: %__MODULE__{
manager: GenEvent.manager,
timeout: timeout}
@doc false
def init({_pid, _ref} = state) do
@@ -11,7 +22,7 @@ defmodule GenEvent.Stream do
@doc false
def handle_event(event, _state) do
# We do this to trick Dialyzer to not complain about non-local returns.
# We do this to trick dialyzer to not complain about non-local returns.
case :erlang.phash2(1, 1) do
0 -> exit({:bad_event, event})
1 -> :remove_handler
@@ -20,9 +31,8 @@ defmodule GenEvent.Stream do
@doc false
def handle_call(msg, _state) do
# We do this to trick Dialyzer to not complain about non-local returns.
# We do this to trick dialyzer to not complain about non-local returns.
reason = {:bad_call, msg}
case :erlang.phash2(1, 1) do
0 -> exit(reason)
1 -> {:remove_handler, reason}
@@ -47,7 +57,7 @@ end
defimpl Enumerable, for: GenEvent.Stream do
def reduce(stream, acc, fun) do
start_fun = fn -> start(stream) end
start_fun = fn() -> start(stream) end
next_fun = &next(stream, &1)
stop_fun = &stop(stream, &1)
Stream.resource(start_fun, next_fun, stop_fun).(acc, wrap_reducer(fun))
@@ -61,33 +71,26 @@ defimpl Enumerable, for: GenEvent.Stream do
{:error, __MODULE__}
end
def slice(_stream) do
{:error, __MODULE__}
end
defp wrap_reducer(fun) do
fn
{:ack, manager, ref, event}, acc ->
send(manager, {ref, :ok})
send manager, {ref, :ok}
fun.(event, acc)
{:async, _manager, _ref, event}, acc ->
fun.(event, acc)
{:sync, manager, ref, event}, acc ->
try do
fun.(event, acc)
after
send(manager, {ref, :ok})
send manager, {ref, :ok}
end
end
end
defp start(%{manager: manager} = stream) do
try do
{:ok, {pid, ref}} =
:gen.call(manager, self(), {:add_process_handler, self(), self()}, :infinity)
{:ok, {pid, ref}} = :gen.call(manager, self(),
{:add_process_handler, self(), self()}, :infinity)
mon_ref = Process.monitor(pid)
{pid, ref, mon_ref}
catch
@@ -135,7 +138,6 @@ defimpl Enumerable, for: GenEvent.Stream do
case wait_for_handler_removal(pid, ref, mon_ref) do
:ok ->
flush_events(ref)
{:error, reason} ->
exit({reason, {__MODULE__, :stop, [stream, acc]}})
end
@@ -144,7 +146,7 @@ defimpl Enumerable, for: GenEvent.Stream do
# If we reach this branch, the handler was not removed yet,
# so we trigger a request for doing so.
defp stop(stream, {pid, ref, _} = acc) do
_ = :gen_event.delete_handler(pid, {pid, ref}, :shutdown)
_ = GenEvent.remove_handler(pid, {pid, ref}, :shutdown)
stop(stream, {:removed, acc})
end
@@ -153,7 +155,6 @@ defimpl Enumerable, for: GenEvent.Stream do
{:gen_event_EXIT, {^pid, ^ref}, _reason} ->
Process.demonitor(mon_ref, [:flush])
:ok
{:DOWN, ^mon_ref, _, _, reason} ->
{:error, reason}
end
@@ -161,8 +162,7 @@ defimpl Enumerable, for: GenEvent.Stream do
defp flush_events(ref) do
receive do
{_from, {_pid, ^ref}, {notify, _event}}
when notify in [:notify, :ack_notify, :sync_notify] ->
{_from, {_pid, ^ref}, {notify, _event}} when notify in [:notify, :ack_notify, :sync_notify] ->
flush_events(ref)
after
0 -> :ok
File diff suppressed because it is too large Load Diff
+40 -106
View File
@@ -1,12 +1,10 @@
defmodule HashDict do
@moduledoc """
Tuple-based HashDict implementation.
WARNING: this module is deprecated.
This module is deprecated. Use the `Map` module instead.
Use the `Map` module instead.
"""
@moduledoc deprecated: "Use Map instead"
use Dict
@node_bitmap 0b111
@@ -22,70 +20,58 @@ defmodule HashDict do
@compile :inline_list_funcs
@compile {:inline, key_hash: 1, key_mask: 1, key_shift: 1}
message = "Use maps and the Map module instead"
@doc """
Creates a new empty dict.
"""
@spec new :: Dict.t()
@deprecated message
@spec new :: Dict.t
def new do
%HashDict{}
end
@deprecated message
def put(%HashDict{root: root, size: size}, key, value) do
{root, counter} = do_put(root, key, value, key_hash(key))
%HashDict{root: root, size: size + counter}
end
@deprecated message
def update!(%HashDict{root: root, size: size} = dict, key, fun) when is_function(fun, 1) do
{root, counter} =
do_update(root, key, fn -> raise KeyError, key: key, term: dict end, fun, key_hash(key))
{root, counter} = do_update(root, key, fn -> raise KeyError, key: key, term: dict end,
fun, key_hash(key))
%HashDict{root: root, size: size + counter}
end
@deprecated message
def update(%HashDict{root: root, size: size}, key, initial, fun) when is_function(fun, 1) do
{root, counter} = do_update(root, key, fn -> initial end, fun, key_hash(key))
%HashDict{root: root, size: size + counter}
end
@deprecated message
def fetch(%HashDict{root: root}, key) do
do_fetch(root, key, key_hash(key))
end
@deprecated message
def delete(dict, key) do
case dict_delete(dict, key) do
{dict, _value} -> dict
:error -> dict
:error -> dict
end
end
@deprecated message
def pop(dict, key, default \\ nil) do
case dict_delete(dict, key) do
{dict, value} -> {value, dict}
:error -> {default, dict}
:error -> {default, dict}
end
end
@deprecated message
def size(%HashDict{size: size}) do
size
end
@doc false
@deprecated message
def reduce(%HashDict{root: root}, acc, fun) do
do_reduce(root, acc, fun, @node_size, fn
{:suspend, acc} -> {:suspended, acc, &{:done, elem(&1, 1)}}
{:halt, acc} -> {:halted, acc}
{:cont, acc} -> {:done, acc}
{:halt, acc} -> {:halted, acc}
{:cont, acc} -> {:done, acc}
end)
end
@@ -95,7 +81,7 @@ defmodule HashDict do
def dict_delete(%HashDict{root: root, size: size}, key) do
case do_delete(root, key, key_hash(key)) do
{root, value} -> {%HashDict{root: root, size: size - 1}, value}
:error -> :error
:error -> :error
end
end
@@ -103,32 +89,26 @@ defmodule HashDict do
defp do_fetch(node, key, hash) do
index = key_mask(hash)
case elem(node, index) do
[^key | v] -> {:ok, v}
[^key|v] -> {:ok, v}
{^key, v, _} -> {:ok, v}
{_, _, n} -> do_fetch(n, key, key_shift(hash))
_ -> :error
{_, _, n} -> do_fetch(n, key, key_shift(hash))
_ -> :error
end
end
defp do_put(node, key, value, hash) do
index = key_mask(hash)
case elem(node, index) do
[] ->
{put_elem(node, index, [key | value]), 1}
[^key | _] ->
{put_elem(node, index, [key | value]), 0}
[k | v] ->
n = put_elem(@node_template, key_mask(key_shift(hash)), [key | value])
{put_elem(node, index, [key|value]), 1}
[^key|_] ->
{put_elem(node, index, [key|value]), 0}
[k|v] ->
n = put_elem(@node_template, key_mask(key_shift(hash)), [key|value])
{put_elem(node, index, {k, v, n}), 1}
{^key, _, n} ->
{put_elem(node, index, {key, value, n}), 0}
{k, v, n} ->
{n, counter} = do_put(n, key, value, key_shift(hash))
{put_elem(node, index, {k, v, n}), counter}
@@ -137,21 +117,16 @@ defmodule HashDict do
defp do_update(node, key, initial, fun, hash) do
index = key_mask(hash)
case elem(node, index) do
[] ->
{put_elem(node, index, [key | initial.()]), 1}
[^key | value] ->
{put_elem(node, index, [key | fun.(value)]), 0}
[k | v] ->
n = put_elem(@node_template, key_mask(key_shift(hash)), [key | initial.()])
{put_elem(node, index, [key|initial.()]), 1}
[^key|value] ->
{put_elem(node, index, [key|fun.(value)]), 0}
[k|v] ->
n = put_elem(@node_template, key_mask(key_shift(hash)), [key|initial.()])
{put_elem(node, index, {k, v, n}), 1}
{^key, value, n} ->
{put_elem(node, index, {key, fun.(value), n}), 0}
{k, v, n} ->
{n, counter} = do_update(n, key, initial, fun, key_shift(hash))
{put_elem(node, index, {k, v, n}), counter}
@@ -160,48 +135,40 @@ defmodule HashDict do
defp do_delete(node, key, hash) do
index = key_mask(hash)
case elem(node, index) do
[] ->
:error
[^key | value] ->
[^key|value] ->
{put_elem(node, index, []), value}
[_ | _] ->
[_|_] ->
:error
{^key, value, n} ->
{put_elem(node, index, do_compact_node(n)), value}
{k, v, n} ->
case do_delete(n, key, key_shift(hash)) do
{@node_template, value} ->
{put_elem(node, index, [k | v]), value}
{put_elem(node, index, [k|v]), value}
{n, value} ->
{put_elem(node, index, {k, v, n}), value}
:error ->
:error
end
end
end
Enum.each(0..(@node_size - 1), fn index ->
Enum.each 0..(@node_size - 1), fn index ->
defp do_compact_node(node) when elem(node, unquote(index)) != [] do
case elem(node, unquote(index)) do
[k | v] ->
[k|v] ->
case put_elem(node, unquote(index), []) do
@node_template -> [k | v]
@node_template -> [k|v]
n -> {k, v, n}
end
{k, v, n} ->
{k, v, put_elem(node, unquote(index), do_compact_node(n))}
end
end
end)
end
## Dict reduce
@@ -217,7 +184,7 @@ defmodule HashDict do
next.(acc)
end
defp do_reduce_each([k | v], {:cont, acc}, fun, next) do
defp do_reduce_each([k|v], {:cont, acc}, fun, next) do
next.(fun.({k, v}, acc))
end
@@ -226,12 +193,7 @@ defmodule HashDict do
end
defp do_reduce(node, acc, fun, count, next) when count > 0 do
do_reduce_each(
:erlang.element(count, node),
acc,
fun,
&do_reduce(node, &1, fun, count - 1, next)
)
do_reduce_each(:erlang.element(count, node), acc, fun, &do_reduce(node, &1, fun, count - 1, next))
end
defp do_reduce(_node, acc, _fun, 0, next) do
@@ -256,45 +218,19 @@ defmodule HashDict do
end
defimpl Enumerable, for: HashDict do
def reduce(dict, acc, fun) do
# Avoid warnings about HashDict being deprecated.
module = HashDict
module.reduce(dict, acc, fun)
end
def member?(dict, {key, value}) do
# Avoid warnings about HashDict being deprecated.
module = HashDict
{:ok, match?({:ok, ^value}, module.fetch(dict, key))}
end
def member?(_dict, _) do
{:ok, false}
end
def count(dict) do
# Avoid warnings about HashDict being deprecated.
module = HashDict
{:ok, module.size(dict)}
end
def slice(_dict) do
{:error, __MODULE__}
end
def reduce(dict, acc, fun), do: HashDict.reduce(dict, acc, fun)
def member?(dict, {k, v}), do: {:ok, match?({:ok, ^v}, HashDict.fetch(dict, k))}
def member?(_dict, _), do: {:ok, false}
def count(dict), do: {:ok, HashDict.size(dict)}
end
defimpl Collectable, for: HashDict do
def into(original) do
# Avoid warnings about HashDict being deprecated.
module = HashDict
collector_fun = fn
dict, {:cont, {key, value}} -> module.put(dict, key, value)
{original, fn
dict, {:cont, {k, v}} -> HashDict.put(dict, k, v)
dict, :done -> dict
_, :halt -> :ok
end
{original, collector_fun}
end}
end
end
@@ -302,8 +238,6 @@ defimpl Inspect, for: HashDict do
import Inspect.Algebra
def inspect(dict, opts) do
# Avoid warnings about HashDict being deprecated.
module = HashDict
concat(["#HashDict<", Inspect.List.inspect(module.to_list(dict), opts), ">"])
concat ["#HashDict<", Inspect.List.inspect(HashDict.to_list(dict), opts), ">"]
end
end
+57 -117
View File
@@ -1,19 +1,17 @@
defmodule HashSet do
@moduledoc """
Tuple-based HashSet implementation.
WARNING: this module is deprecated.
This module is deprecated. Use the `MapSet` module instead.
Use the `MapSet` module instead.
"""
@moduledoc deprecated: "Use MapSet instead"
@behaviour Set
@node_bitmap 0b111
@node_shift 3
@node_size 8
@node_template :erlang.make_tuple(@node_size, [])
message = "Use the MapSet module instead"
@opaque t :: %__MODULE__{size: non_neg_integer, root: term}
@doc false
defstruct size: 0, root: @node_template
@@ -22,85 +20,71 @@ defmodule HashSet do
@compile :inline_list_funcs
@compile {:inline, key_hash: 1, key_mask: 1, key_shift: 1}
@deprecated message
@spec new :: Set.t()
@spec new :: Set.t
def new do
%HashSet{}
end
@deprecated message
def union(%HashSet{size: size1} = set1, %HashSet{size: size2} = set2) when size1 <= size2 do
set_fold(set1, set2, fn v, acc -> put(acc, v) end)
set_fold set1, set2, fn v, acc -> put(acc, v) end
end
@deprecated message
def union(%HashSet{} = set1, %HashSet{} = set2) do
set_fold(set2, set1, fn v, acc -> put(acc, v) end)
set_fold set2, set1, fn v, acc -> put(acc, v) end
end
@deprecated message
def intersection(%HashSet{} = set1, %HashSet{} = set2) do
set_fold(set1, %HashSet{}, fn v, acc ->
set_fold set1, %HashSet{}, fn v, acc ->
if member?(set2, v), do: put(acc, v), else: acc
end)
end
@deprecated message
def difference(%HashSet{} = set1, %HashSet{} = set2) do
set_fold(set2, set1, fn v, acc -> delete(acc, v) end)
end
@deprecated message
def to_list(set) do
set_fold(set, [], &[&1 | &2]) |> :lists.reverse()
end
@deprecated message
def equal?(%HashSet{size: size1} = set1, %HashSet{size: size2} = set2) do
case size1 do
^size2 -> subset?(set1, set2)
_ -> false
end
end
@deprecated message
def difference(%HashSet{} = set1, %HashSet{} = set2) do
set_fold set2, set1, fn v, acc -> delete(acc, v) end
end
def to_list(set) do
set_fold(set, [], &[&1|&2]) |> :lists.reverse
end
def equal?(%HashSet{size: size1} = set1, %HashSet{size: size2} = set2) do
case size1 do
^size2 -> subset?(set1, set2)
_ -> false
end
end
def subset?(%HashSet{} = set1, %HashSet{} = set2) do
reduce(set1, {:cont, true}, fn member, acc ->
case member?(set2, member) do
true -> {:cont, acc}
_ -> {:halt, false}
_ -> {:halt, false}
end
end)
|> elem(1)
end) |> elem(1)
end
@deprecated message
def disjoint?(%HashSet{} = set1, %HashSet{} = set2) do
reduce(set2, {:cont, true}, fn member, acc ->
case member?(set1, member) do
false -> {:cont, acc}
_ -> {:halt, false}
_ -> {:halt, false}
end
end)
|> elem(1)
end) |> elem(1)
end
@deprecated message
def member?(%HashSet{root: root}, term) do
do_member?(root, term, key_hash(term))
end
@deprecated message
def put(%HashSet{root: root, size: size}, term) do
{root, counter} = do_put(root, term, key_hash(term))
%HashSet{root: root, size: size + counter}
end
@deprecated message
def delete(%HashSet{root: root, size: size} = set, term) do
case do_delete(root, term, key_hash(term)) do
{:ok, root} -> %HashSet{root: root, size: size - 1}
:error -> set
:error -> set
end
end
@@ -108,12 +92,11 @@ defmodule HashSet do
def reduce(%HashSet{root: root}, acc, fun) do
do_reduce(root, acc, fun, @node_size, fn
{:suspend, acc} -> {:suspended, acc, &{:done, elem(&1, 1)}}
{:halt, acc} -> {:halted, acc}
{:cont, acc} -> {:done, acc}
{:halt, acc} -> {:halted, acc}
{:cont, acc} -> {:done, acc}
end)
end
@deprecated message
def size(%HashSet{size: size}) do
size
end
@@ -128,85 +111,72 @@ defmodule HashSet do
defp do_member?(node, term, hash) do
index = key_mask(hash)
case elem(node, index) do
[] -> false
[^term | _] -> true
[_] -> false
[_ | n] -> do_member?(n, term, key_shift(hash))
[] -> false
[^term|_] -> true
[_] -> false
[_|n] -> do_member?(n, term, key_shift(hash))
end
end
defp do_put(node, term, hash) do
index = key_mask(hash)
case elem(node, index) do
[] ->
{put_elem(node, index, [term]), 1}
[^term | _] ->
[^term|_] ->
{node, 0}
[t] ->
n = put_elem(@node_template, key_mask(key_shift(hash)), [term])
{put_elem(node, index, [t | n]), 1}
[t | n] ->
{put_elem(node, index, [t|n]), 1}
[t|n] ->
{n, counter} = do_put(n, term, key_shift(hash))
{put_elem(node, index, [t | n]), counter}
{put_elem(node, index, [t|n]), counter}
end
end
defp do_delete(node, term, hash) do
index = key_mask(hash)
case elem(node, index) do
[] ->
:error
[^term] ->
{:ok, put_elem(node, index, [])}
[_] ->
:error
[^term | n] ->
[^term|n] ->
{:ok, put_elem(node, index, do_compact_node(n))}
[t | n] ->
[t|n] ->
case do_delete(n, term, key_shift(hash)) do
{:ok, @node_template} ->
{:ok, put_elem(node, index, [t])}
{:ok, n} ->
{:ok, put_elem(node, index, [t | n])}
{:ok, put_elem(node, index, [t|n])}
:error ->
:error
end
end
end
Enum.each(0..(@node_size - 1), fn index ->
Enum.each 0..(@node_size - 1), fn index ->
defp do_compact_node(node) when elem(node, unquote(index)) != [] do
case elem(node, unquote(index)) do
[t] ->
case put_elem(node, unquote(index), []) do
@node_template -> [t]
n -> [t | n]
n -> [t|n]
end
[t | n] ->
[t | put_elem(node, unquote(index), do_compact_node(n))]
[t|n] ->
[t|put_elem(node, unquote(index), do_compact_node(n))]
end
end
end)
end
## Set fold
defp do_fold_each([], acc, _fun), do: acc
defp do_fold_each([t], acc, fun), do: fun.(t, acc)
defp do_fold_each([t | n], acc, fun), do: do_fold(n, fun.(t, acc), fun, @node_size)
defp do_fold_each([], acc, _fun), do: acc
defp do_fold_each([t], acc, fun), do: fun.(t, acc)
defp do_fold_each([t|n], acc, fun), do: do_fold(n, fun.(t, acc), fun, @node_size)
defp do_fold(node, acc, fun, count) when count > 0 do
acc = do_fold_each(:erlang.element(count, node), acc, fun)
@@ -235,17 +205,12 @@ defmodule HashSet do
next.(fun.(t, acc))
end
defp do_reduce_each([t | n], {:cont, acc}, fun, next) do
defp do_reduce_each([t|n], {:cont, acc}, fun, next) do
do_reduce(n, fun.(t, acc), fun, @node_size, next)
end
defp do_reduce(node, acc, fun, count, next) when count > 0 do
do_reduce_each(
:erlang.element(count, node),
acc,
fun,
&do_reduce(node, &1, fun, count - 1, next)
)
do_reduce_each(:erlang.element(count, node), acc, fun, &do_reduce(node, &1, fun, count - 1, next))
end
defp do_reduce(_node, acc, _fun, 0, next) do
@@ -270,41 +235,18 @@ defmodule HashSet do
end
defimpl Enumerable, for: HashSet do
def reduce(set, acc, fun) do
# Avoid warnings about HashSet being deprecated.
module = HashSet
module.reduce(set, acc, fun)
end
def member?(set, term) do
# Avoid warnings about HashSet being deprecated.
module = HashSet
{:ok, module.member?(set, term)}
end
def count(set) do
# Avoid warnings about HashSet being deprecated.
module = HashSet
{:ok, module.size(set)}
end
def slice(_set) do
{:error, __MODULE__}
end
def reduce(set, acc, fun), do: HashSet.reduce(set, acc, fun)
def member?(set, v), do: {:ok, HashSet.member?(set, v)}
def count(set), do: {:ok, HashSet.size(set)}
end
defimpl Collectable, for: HashSet do
def into(original) do
# Avoid warnings about HashSet being deprecated.
module = HashSet
collector_fun = fn
set, {:cont, term} -> module.put(set, term)
{original, fn
set, {:cont, x} -> HashSet.put(set, x)
set, :done -> set
_, :halt -> :ok
end
{original, collector_fun}
end}
end
end
@@ -312,8 +254,6 @@ defimpl Inspect, for: HashSet do
import Inspect.Algebra
def inspect(set, opts) do
# Avoid warnings about HashSet being deprecated.
module = HashSet
concat(["#HashSet<", Inspect.List.inspect(module.to_list(set), opts), ">"])
concat ["#HashSet<", Inspect.List.inspect(HashSet.to_list(set), opts), ">"]
end
end
+331 -274
View File
@@ -1,37 +1,33 @@
import Kernel, except: [inspect: 1]
import Inspect.Algebra
alias Code.Identifier
defprotocol Inspect do
@moduledoc """
The `Inspect` protocol converts an Elixir data structure into an
algebra document.
This documentation refers to implementing the `Inspect` protocol
for your own data structures. To learn more about using inspect,
see `Kernel.inspect/2` and `IO.inspect/2`.
The `Inspect` protocol is responsible for converting any Elixir
data structure into an algebra document. This document is then
formatted, either in pretty printing format or a regular one.
The `inspect/2` function receives the entity to be inspected
followed by the inspecting options, represented by the struct
`Inspect.Opts`. Building of the algebra document is done with
`Inspect.Algebra`.
`Inspect.Opts`.
Inspection is done using the functions available in `Inspect.Algebra`.
## Examples
Many times, inspecting a structure can be implemented in function
of existing entities. For example, here is `MapSet`'s `inspect/2`
of existing entities. For example, here is `MapSet`'s `inspect`
implementation:
defimpl Inspect, for: MapSet do
import Inspect.Algebra
def inspect(dict, opts) do
concat(["#MapSet<", to_doc(MapSet.to_list(dict), opts), ">"])
concat ["#MapSet<", to_doc(MapSet.to_list(dict), opts), ">"]
end
end
The [`concat/1`](`Inspect.Algebra.concat/1`) function comes from `Inspect.Algebra` and it
The `concat` function comes from `Inspect.Algebra` and it
concatenates algebra documents together. In the example above,
it is concatenating the string `"MapSet<"` (all strings are
valid algebra documents that keep their formatting when pretty
@@ -39,8 +35,8 @@ defprotocol Inspect do
other string `">"`.
Since regular strings are valid entities in an algebra document,
an implementation of the `Inspect` protocol may simply return a
string, although that will devoid it of any pretty-printing.
an implementation of inspect may simply return a string,
although that will devoid it of any pretty-printing.
## Error handling
@@ -48,325 +44,432 @@ defprotocol Inspect do
Elixir will raise an `ArgumentError` error and will automatically fall back
to a raw representation for printing the structure.
You can however access the underlying error by invoking the `Inspect`
implementation directly. For example, to test `Inspect.MapSet` above,
You can however access the underlying error by invoking the Inspect
implementation directly. For example, to test Inspect.MapSet above,
you can invoke it as:
Inspect.MapSet.inspect(MapSet.new(), %Inspect.Opts{})
## Deriving
The `Inspect` protocol can be derived to hide certain fields from
structs, so they don't show up in logs, inspects and similar. This
is especially useful for fields containing private information.
The options `:only` and `:except` can be used with `@derive` to
specify which fields should and should not appear in the
algebra document:
defmodule User do
@derive {Inspect, only: [:id, :name]}
defstruct [:id, :name, :address]
end
inspect(%User{id: 1, name: "Homer", address: "742 Evergreen Terrace"})
#=> #User<id: 1, name: "Homer", ...>
Inspect.MapSet.inspect(MapSet.new, Inspect.Opts.new)
"""
# Handle structs in Any
@fallback_to_any true
@doc """
Converts `term` into an algebra document.
This function shouldn't be invoked directly, unless when implementing
a custom `inspect_fun` to be given to `Inspect.Opts`. Everywhere else,
`Inspect.Algebra.to_doc/2` should be preferred as it handles structs
and exceptions.
"""
@spec inspect(t, Inspect.Opts.t()) :: Inspect.Algebra.t()
def inspect(term, opts)
def inspect(thing, opts)
end
defimpl Inspect, for: Atom do
require Macro
def inspect(atom, opts) do
color(Identifier.inspect_as_atom(atom), color_key(atom), opts)
def inspect(atom, _opts) do
inspect(atom)
end
defp color_key(atom) when is_boolean(atom), do: :boolean
defp color_key(nil), do: nil
defp color_key(_), do: :atom
end
def inspect(false), do: "false"
def inspect(true), do: "true"
def inspect(nil), do: "nil"
def inspect(:""), do: ":\"\""
defimpl Inspect, for: BitString do
def inspect(term, opts) when is_binary(term) do
%Inspect.Opts{binaries: bins, base: base, printable_limit: printable_limit} = opts
def inspect(atom) do
binary = Atom.to_string(atom)
if base == :decimal and
(bins == :as_strings or (bins == :infer and String.printable?(term, printable_limit))) do
inspected =
case Identifier.escape(term, ?", printable_limit) do
{escaped, ""} -> [?", escaped, ?"]
{escaped, _} -> [?", escaped, ?", " <> ..."]
cond do
valid_ref_identifier?(binary) ->
if only_elixir?(binary) do
binary
else
"Elixir." <> rest = binary
rest
end
color(IO.iodata_to_binary(inspected), :string, opts)
else
inspect_bitstring(term, opts)
valid_atom_identifier?(binary) ->
":" <> binary
atom in [:%{}, :{}, :<<>>, :..., :%] ->
":" <> binary
atom in Macro.binary_ops or atom in Macro.unary_ops ->
":" <> binary
true ->
<<?:, ?", Inspect.BitString.escape(binary, ?")::binary, ?">>
end
end
def inspect(term, opts) do
inspect_bitstring(term, opts)
defp only_elixir?("Elixir." <> rest), do: only_elixir?(rest)
defp only_elixir?("Elixir"), do: true
defp only_elixir?(_), do: false
# Detect if atom is an atom alias (Elixir.Foo.Bar.Baz)
defp valid_ref_identifier?("Elixir" <> rest) do
valid_ref_piece?(rest)
end
defp inspect_bitstring("", opts) do
color("<<>>", :binary, opts)
defp valid_ref_identifier?(_), do: false
defp valid_ref_piece?(<<?., h, t::binary>>) when h in ?A..?Z do
valid_ref_piece? valid_identifier?(t)
end
defp valid_ref_piece?(<<>>), do: true
defp valid_ref_piece?(_), do: false
# Detect if atom
defp valid_atom_identifier?(<<h, t::binary>>) when h in ?a..?z or h in ?A..?Z or h == ?_ do
valid_atom_piece?(t)
end
defp valid_atom_identifier?(_), do: false
defp valid_atom_piece?(t) do
case valid_identifier?(t) do
<<>> -> true
<<??>> -> true
<<?!>> -> true
<<?@, t::binary>> -> valid_atom_piece?(t)
_ -> false
end
end
defp valid_identifier?(<<h, t::binary>>)
when h in ?a..?z
when h in ?A..?Z
when h in ?0..?9
when h == ?_ do
valid_identifier? t
end
defp valid_identifier?(other), do: other
end
defimpl Inspect, for: BitString do
def inspect(thing, %Inspect.Opts{binaries: bins} = opts) when is_binary(thing) do
if bins == :as_strings or (bins == :infer and String.printable?(thing)) do
<<?", escape(thing, ?")::binary, ?">>
else
inspect_bitstring(thing, opts)
end
end
def inspect(thing, opts) do
inspect_bitstring(thing, opts)
end
## Escaping
@doc false
def escape(other, char) do
escape(other, char, <<>>)
end
defp escape(<<char, t::binary >>, char, binary) do
escape(t, char, <<binary::binary, ?\\, char>>)
end
defp escape(<<?#, ?{, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?#, ?{>>)
end
defp escape(<<?\a, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?a>>)
end
defp escape(<<?\b, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?b>>)
end
defp escape(<<?\d, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?d>>)
end
defp escape(<<?\e, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?e>>)
end
defp escape(<<?\f, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?f>>)
end
defp escape(<<?\n, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?n>>)
end
defp escape(<<?\r, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?r>>)
end
defp escape(<<?\\, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?\\>>)
end
defp escape(<<?\t, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?t>>)
end
defp escape(<<?\v, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, ?\\, ?v>>)
end
defp escape(<<h::utf8, t::binary>>, char, binary) do
head = <<h::utf8 >>
if String.printable?(head) do
escape(t, char, append(head, binary))
else
<<byte::8, h::binary >> = head
t = <<h::binary, t::binary>>
escape(t, char, <<binary::binary, escape_char(byte)::binary>>)
end
end
defp escape(<<h, t::binary>>, char, binary) do
escape(t, char, <<binary::binary, escape_char(h)::binary>>)
end
defp escape(<<>>, _char, binary), do: binary
@doc false
# Also used by Regex
def escape_char(0) do
<<?\\, ?0>>
end
def escape_char(char) when char < 0x100 do
<<a::4, b::4>> = <<char::8>>
<<?\\, ?x, to_hex(a), to_hex(b)>>
end
def escape_char(char) when char < 0x10000 do
<<a::4, b::4, c::4, d::4>> = <<char::16>>
<<?\\, ?x, ?{, to_hex(a), to_hex(b), to_hex(c), to_hex(d), ?}>>
end
def escape_char(char) when char < 0x1000000 do
<<a::4, b::4, c::4, d::4, e::4, f::4>> = <<char::24>>
<<?\\, ?x, ?{, to_hex(a), to_hex(b), to_hex(c),
to_hex(d), to_hex(e), to_hex(f), ?}>>
end
defp to_hex(c) when c in 0..9, do: ?0+c
defp to_hex(c) when c in 10..15, do: ?A+c-10
defp append(<<h, t::binary>>, binary), do: append(t, <<binary::binary, h>>)
defp append(<<>>, binary), do: binary
## Bitstrings
defp inspect_bitstring(bitstring, opts) do
left = color("<<", :binary, opts)
right = color(">>", :binary, opts)
inner = each_bit(bitstring, opts.limit, opts)
group(concat(concat(left, nest(inner, 2)), right))
each_bit(bitstring, opts.limit, "<<") <> ">>"
end
defp each_bit(_, 0, _) do
"..."
defp each_bit(_, 0, acc) do
acc <> "..."
end
defp each_bit(<<>>, _counter, _opts) do
:doc_nil
defp each_bit(<<h, t::bitstring>>, counter, acc) when t != <<>> do
each_bit(t, decrement(counter), acc <> Integer.to_string(h) <> ", ")
end
defp each_bit(<<h::8>>, _counter, opts) do
Inspect.Integer.inspect(h, opts)
defp each_bit(<<h::8>>, _counter, acc) do
acc <> Integer.to_string(h)
end
defp each_bit(<<h, t::bitstring>>, counter, opts) do
flex_glue(
concat(Inspect.Integer.inspect(h, opts), ","),
each_bit(t, decrement(counter), opts)
)
defp each_bit(<<>>, _counter, acc) do
acc
end
defp each_bit(bitstring, _counter, opts) do
defp each_bit(bitstring, _counter, acc) do
size = bit_size(bitstring)
<<h::size(size)>> = bitstring
Inspect.Integer.inspect(h, opts) <> "::size(" <> Integer.to_string(size) <> ")"
acc <> Integer.to_string(h) <> "::size(" <> Integer.to_string(size) <> ")"
end
@compile {:inline, decrement: 1}
defp decrement(:infinity), do: :infinity
defp decrement(counter), do: counter - 1
defp decrement(counter), do: counter - 1
end
defimpl Inspect, for: List do
def inspect([], opts) do
color("[]", :list, opts)
end
# TODO: Remove :char_list and :as_char_lists handling on v2.0
def inspect(term, opts) do
%Inspect.Opts{
charlists: lists,
char_lists: lists_deprecated,
printable_limit: printable_limit
} = opts
lists =
if lists == :infer and lists_deprecated != :infer do
case lists_deprecated do
:as_char_lists ->
IO.warn(
"the :char_lists inspect option and its :as_char_lists " <>
"value are deprecated, use the :charlists option and its " <>
":as_charlists value instead"
)
:as_charlists
_ ->
IO.warn("the :char_lists inspect option is deprecated, use :charlists instead")
lists_deprecated
end
else
lists
end
open = color("[", :list, opts)
sep = color(",", :list, opts)
close = color("]", :list, opts)
def inspect([], _opts), do: "[]"
def inspect(thing, %Inspect.Opts{char_lists: lists} = opts) do
cond do
lists == :as_charlists or (lists == :infer and List.ascii_printable?(term, printable_limit)) ->
inspected =
case Identifier.escape(IO.chardata_to_string(term), ?', printable_limit) do
{escaped, ""} -> [?', escaped, ?']
{escaped, _} -> [?', escaped, ?', " ++ ..."]
end
IO.iodata_to_binary(inspected)
keyword?(term) ->
container_doc(open, term, close, opts, &keyword/2, separator: sep, break: :strict)
lists == :as_char_lists or (lists == :infer and printable?(thing)) ->
<<?', Inspect.BitString.escape(IO.chardata_to_string(thing), ?')::binary, ?'>>
keyword?(thing) ->
surround_many("[", thing, "]", opts, &keyword/2)
true ->
container_doc(open, term, close, opts, &to_doc/2, separator: sep)
surround_many("[", thing, "]", opts, &to_doc/2)
end
end
@doc false
def keyword({key, value}, opts) do
key = color(Identifier.inspect_as_key(key), :atom, opts)
concat(key, concat(" ", to_doc(value, opts)))
concat(
key_to_binary(key) <> ": ",
to_doc(value, opts)
)
end
@doc false
def keyword?([{key, _value} | rest]) when is_atom(key) do
case Atom.to_charlist(key) do
case Atom.to_char_list(key) do
'Elixir.' ++ _ -> false
_ -> keyword?(rest)
end
end
def keyword?([]), do: true
def keyword?([]), do: true
def keyword?(_other), do: false
@doc false
def printable?([c|cs]) when is_integer(c) and c in 32..126, do: printable?(cs)
def printable?([?\n|cs]), do: printable?(cs)
def printable?([?\r|cs]), do: printable?(cs)
def printable?([?\t|cs]), do: printable?(cs)
def printable?([?\v|cs]), do: printable?(cs)
def printable?([?\b|cs]), do: printable?(cs)
def printable?([?\f|cs]), do: printable?(cs)
def printable?([?\e|cs]), do: printable?(cs)
def printable?([?\a|cs]), do: printable?(cs)
def printable?([]), do: true
def printable?(_), do: false
## Private
defp key_to_binary(key) do
case Inspect.Atom.inspect(key) do
":" <> right -> right
other -> other
end
end
end
defimpl Inspect, for: Tuple do
def inspect({}, _opts), do: "{}"
def inspect(tuple, opts) do
open = color("{", :tuple, opts)
sep = color(",", :tuple, opts)
close = color("}", :tuple, opts)
container_opts = [separator: sep, break: :flex]
container_doc(open, Tuple.to_list(tuple), close, opts, &to_doc/2, container_opts)
surround_many("{", Tuple.to_list(tuple), "}", opts, &to_doc/2)
end
end
defimpl Inspect, for: Map do
def inspect(map, opts) do
inspect(map, "", opts)
nest inspect(map, "", opts), 1
end
def inspect(map, name, opts) do
map = :maps.to_list(map)
open = color("%" <> name <> "{", :map, opts)
sep = color(",", :map, opts)
close = color("}", :map, opts)
container_doc(open, map, close, opts, traverse_fun(map, opts), separator: sep, break: :strict)
surround_many("%" <> name <> "{", map, "}", opts, traverse_fun(map))
end
defp traverse_fun(list, opts) do
defp traverse_fun(list) do
if Inspect.List.keyword?(list) do
&Inspect.List.keyword/2
else
sep = color(" => ", :map, opts)
&to_map(&1, &2, sep)
&to_map/2
end
end
defp to_map({key, value}, opts, sep) do
concat(concat(to_doc(key, opts), sep), to_doc(value, opts))
defp to_map({key, value}, opts) do
concat(
concat(to_doc(key, opts), " => "),
to_doc(value, opts)
)
end
end
defimpl Inspect, for: Integer do
def inspect(term, %Inspect.Opts{base: base} = opts) do
inspected = Integer.to_string(term, base_to_value(base)) |> prepend_prefix(base)
color(inspected, :number, opts)
def inspect(thing, %Inspect.Opts{base: base}) do
Integer.to_string(thing, base_to_value(base))
|> prepend_prefix(base)
end
defp base_to_value(base) do
case base do
:binary -> 2
:binary -> 2
:decimal -> 10
:octal -> 8
:hex -> 16
:octal -> 8
:hex -> 16
end
end
defp prepend_prefix(value, :decimal), do: value
defp prepend_prefix(<<?-, value::binary>>, base) do
"-" <> prepend_prefix(value, base)
end
defp prepend_prefix(value, base) do
prefix =
case base do
:binary -> "0b"
:octal -> "0o"
:hex -> "0x"
end
prefix = case base do
:binary -> "0b"
:octal -> "0o"
:hex -> "0x"
end
prefix <> value
end
end
defimpl Inspect, for: Float do
def inspect(term, opts) do
inspected = IO.iodata_to_binary(:io_lib_format.fwrite_g(term))
color(inspected, :number, opts)
def inspect(thing, _opts) do
IO.iodata_to_binary(:io_lib_format.fwrite_g(thing))
end
end
defimpl Inspect, for: Regex do
def inspect(regex, opts) do
{escaped, _} =
regex.source
|> normalize(<<>>)
|> Identifier.escape(?/, :infinity, &escape_map/1)
source = IO.iodata_to_binary(['~r/', escaped, ?/, regex.opts])
color(source, :regex, opts)
def inspect(regex, _opts) do
delim = ?/
concat ["~r",
<<delim, escape(regex.source, delim)::binary, delim>>,
regex.opts]
end
defp normalize(<<?\\, ?\\, rest::binary>>, acc), do: normalize(rest, <<acc::binary, ?\\, ?\\>>)
defp normalize(<<?\\, ?/, rest::binary>>, acc), do: normalize(rest, <<acc::binary, ?/>>)
defp normalize(<<char, rest::binary>>, acc), do: normalize(rest, <<acc::binary, char>>)
defp normalize(<<>>, acc), do: acc
defp escape(bin, term),
do: escape(bin, <<>>, term)
defp escape_map(?\a), do: '\\a'
defp escape_map(?\f), do: '\\f'
defp escape_map(?\n), do: '\\n'
defp escape_map(?\r), do: '\\r'
defp escape_map(?\t), do: '\\t'
defp escape_map(?\v), do: '\\v'
defp escape_map(_), do: false
defp escape(<<?\\, term>> <> rest, buf, term),
do: escape(rest, buf <> <<?\\, term>>, term)
defp escape(<<term>> <> rest, buf, term),
do: escape(rest, buf <> <<?\\, term>>, term)
# the list of characters is from "String.printable?" impl
# minus characters treated specially by regex: \s, \d, \b, \e
defp escape(<<?\n>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?n>>, term)
defp escape(<<?\r>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?r>>, term)
defp escape(<<?\t>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?t>>, term)
defp escape(<<?\v>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?v>>, term)
defp escape(<<?\f>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?f>>, term)
defp escape(<<?\a>> <> rest, buf, term),
do: escape(rest, <<buf::binary, ?\\, ?a>>, term)
defp escape(<<c::utf8>> <> rest, buf, term) do
charstr = <<c::utf8>>
if String.printable?(charstr) and not c in [?\d, ?\b, ?\e] do
escape(rest, buf <> charstr, term)
else
escape(rest, buf <> Inspect.BitString.escape_char(c), term)
end
end
defp escape(<<c>> <> rest, buf, term),
do: escape(rest, <<buf::binary, Inspect.BitString.escape_char(c)>>, term)
defp escape(<<>>, buf, _), do: buf
end
defimpl Inspect, for: Function do
def inspect(function, _opts) do
fun_info = Function.info(function)
fun_info = :erlang.fun_info(function)
mod = fun_info[:module]
name = fun_info[:name]
cond do
fun_info[:type] == :external and fun_info[:env] == [] ->
inspected_as_atom = Identifier.inspect_as_atom(mod)
inspected_as_function = Identifier.inspect_as_function(name)
"&#{inspected_as_atom}.#{inspected_as_function}/#{fun_info[:arity]}"
match?('elixir_compiler_' ++ _, Atom.to_charlist(mod)) ->
if function_exported?(mod, :__RELATIVE__, 0) do
"#Function<#{uniq(fun_info)} in file:#{mod.__RELATIVE__}>"
else
if fun_info[:type] == :external and fun_info[:env] == [] do
"&#{Inspect.Atom.inspect(mod)}.#{fun_info[:name]}/#{fun_info[:arity]}"
else
case Atom.to_char_list(mod) do
'elixir_compiler_' ++ _ ->
if function_exported?(mod, :__RELATIVE__, 0) do
"#Function<#{uniq(fun_info)} in file:#{mod.__RELATIVE__}>"
else
default_inspect(mod, fun_info)
end
_ ->
default_inspect(mod, fun_info)
end
true ->
default_inspect(mod, fun_info)
end
end
end
defp default_inspect(mod, fun_info) do
inspected_as_atom = Identifier.inspect_as_atom(mod)
extracted_name = extract_name(fun_info[:name])
"#Function<#{uniq(fun_info)}/#{fun_info[:arity]} in #{inspected_as_atom}#{extracted_name}>"
"#Function<#{uniq(fun_info)}/#{fun_info[:arity]} in " <>
"#{Inspect.Atom.inspect(mod)}#{extract_name(fun_info[:name])}>"
end
defp extract_name([]) do
@@ -374,17 +477,16 @@ defimpl Inspect, for: Function do
end
defp extract_name(name) do
case Identifier.extract_anonymous_fun_parent(name) do
{name, arity} ->
"." <> Identifier.inspect_as_function(name) <> "/" <> arity
:error ->
"." <> Identifier.inspect_as_function(name)
name = Atom.to_string(name)
case :binary.split(name, "-", [:global]) do
["", name | _] -> "." <> name
_ -> "." <> name
end
end
defp uniq(fun_info) do
Integer.to_string(fun_info[:new_index]) <> "." <> Integer.to_string(fun_info[:uniq])
Integer.to_string(fun_info[:new_index]) <> "." <>
Integer.to_string(fun_info[:uniq])
end
end
@@ -396,7 +498,7 @@ end
defimpl Inspect, for: Port do
def inspect(port, _opts) do
IO.iodata_to_binary(:erlang.port_to_list(port))
IO.iodata_to_binary :erlang.port_to_list(port)
end
end
@@ -408,64 +510,19 @@ defimpl Inspect, for: Reference do
end
defimpl Inspect, for: Any do
defmacro __deriving__(module, struct, options) do
fields =
struct
|> Map.drop([:__exception__, :__struct__])
|> Map.keys()
only = Keyword.get(options, :only, fields)
except = Keyword.get(options, :except, [])
filtered_fields =
fields
|> Enum.reject(&(&1 in except))
|> Enum.filter(&(&1 in only))
inspect_module =
if fields == only and except == [] do
quote(do: Inspect.Map)
else
quote(do: Inspect.Any)
end
quote do
defimpl Inspect, for: unquote(module) do
def inspect(struct, opts) do
map = Map.take(struct, unquote(filtered_fields))
name = Identifier.inspect_as_atom(unquote(module))
unquote(inspect_module).inspect(map, name, opts)
end
end
end
end
def inspect(%module{} = struct, opts) do
def inspect(%{__struct__: struct} = map, opts) do
try do
module.__struct__
struct.__struct__
rescue
_ -> Inspect.Map.inspect(struct, opts)
_ -> Inspect.Map.inspect(map, opts)
else
dunder ->
if :maps.keys(dunder) == :maps.keys(struct) do
pruned = :maps.remove(:__exception__, :maps.remove(:__struct__, struct))
Inspect.Map.inspect(pruned, Identifier.inspect_as_atom(module), opts)
if :maps.keys(dunder) == :maps.keys(map) do
pruned = :maps.remove(:__exception__, :maps.remove(:__struct__, map))
Inspect.Map.inspect(pruned, Inspect.Atom.inspect(struct, opts), opts)
else
Inspect.Map.inspect(struct, opts)
Inspect.Map.inspect(map, opts)
end
end
end
def inspect(map, name, opts) do
# Use the :limit option and an extra element to force
# `container_doc/6` to append "...".
opts = %{opts | limit: min(opts.limit, map_size(map))}
map = :maps.to_list(map) ++ ["..."]
open = color("#" <> name <> "<", :map, opts)
sep = color(",", :map, opts)
close = color(">", :map, opts)
container_doc(open, map, close, opts, &Inspect.List.keyword/2, separator: sep, break: :strict)
end
end
File diff suppressed because it is too large Load Diff
+111 -271
View File
@@ -1,49 +1,33 @@
defmodule Integer do
@moduledoc """
Functions for working with integers.
Some functions that work on integers are found in `Kernel`:
* `abs/1`
* `div/2`
* `max/2`
* `min/2`
* `rem/2`
"""
import Bitwise
@doc """
Determines if `integer` is odd.
Determines if an integer is odd.
Returns `true` if the given `integer` is an odd number,
otherwise it returns `false`.
Returns `true` if `n` is an odd number, otherwise `false`.
Allowed in guard clauses.
## Examples
iex> Integer.is_odd(5)
iex> Integer.is_odd(3)
true
iex> Integer.is_odd(6)
iex> Integer.is_odd(4)
false
iex> Integer.is_odd(-5)
true
iex> Integer.is_odd(0)
false
"""
defguard is_odd(integer) when is_integer(integer) and (integer &&& 1) == 1
defmacro is_odd(n) do
quote do: (unquote(n) &&& 1) == 1
end
@doc """
Determines if an `integer` is even.
Determines if an integer is even.
Returns `true` if the given `integer` is an even number,
otherwise it returns `false`.
Returns `true` if `n` is an even number, otherwise `false`.
Allowed in guard clauses.
@@ -54,151 +38,72 @@ defmodule Integer do
iex> Integer.is_even(5)
false
iex> Integer.is_even(-10)
true
iex> Integer.is_even(0)
true
"""
defguard is_even(integer) when is_integer(integer) and (integer &&& 1) == 0
@doc """
Computes the modulo remainder of an integer division.
`Integer.mod/2` uses floored division, which means that
the result will always have the sign of the `divisor`.
Raises an `ArithmeticError` exception if one of the arguments is not an
integer, or when the `divisor` is `0`.
## Examples
iex> Integer.mod(5, 2)
1
iex> Integer.mod(6, -4)
-2
"""
@doc since: "1.4.0"
@spec mod(integer, neg_integer | pos_integer) :: integer
def mod(dividend, divisor) do
remainder = rem(dividend, divisor)
if remainder * divisor < 0 do
remainder + divisor
else
remainder
end
defmacro is_even(n) do
quote do: (unquote(n) &&& 1) == 0
end
@doc """
Performs a floored integer division.
Returns the ordered digits for the given non-negative integer.
Raises an `ArithmeticError` exception if one of the arguments is not an
integer, or when the `divisor` is `0`.
`Integer.floor_div/2` performs *floored* integer division. This means that
the result is always rounded towards negative infinity.
If you want to perform truncated integer division (rounding towards zero),
use `Kernel.div/2` instead.
An optional base value may be provided representing the radix for the returned
digits.
## Examples
iex> Integer.floor_div(5, 2)
2
iex> Integer.floor_div(6, -4)
-2
iex> Integer.floor_div(-99, 2)
-50
iex> Integer.digits(101)
[1, 0, 1]
iex> Integer.digits(58127, 2)
[1, 1, 1, 0, 0, 0, 1, 1, 0, 0, 0, 0, 1, 1, 1, 1]
"""
@doc since: "1.4.0"
@spec floor_div(integer, neg_integer | pos_integer) :: integer
def floor_div(dividend, divisor) do
if dividend * divisor < 0 and rem(dividend, divisor) != 0 do
div(dividend, divisor) - 1
else
div(dividend, divisor)
end
@spec digits(non_neg_integer, pos_integer) :: [non_neg_integer]
def digits(n, base \\ 10) when is_integer(n) and n >= 0
and is_integer(base) and base >= 2 do
do_digits(n, base, [])
end
defp do_digits(0, _base, []), do: [0]
defp do_digits(0, _base, acc), do: acc
defp do_digits(n, base, acc) do
do_digits div(n, base), base, [rem(n, base) | acc]
end
@doc """
Returns the ordered digits for the given `integer`.
Returns the integer represented by the ordered digits.
An optional `base` value may be provided representing the radix for the returned
digits. This one must be an integer >= 2.
An optional base value may be provided representing the radix for the digits.
## Examples
iex> Integer.digits(123)
[1, 2, 3]
iex> Integer.digits(170, 2)
[1, 0, 1, 0, 1, 0, 1, 0]
iex> Integer.digits(-170, 2)
[-1, 0, -1, 0, -1, 0, -1, 0]
"""
@spec digits(integer, pos_integer) :: [integer, ...]
def digits(integer, base \\ 10)
when is_integer(integer) and is_integer(base) and base >= 2 do
do_digits(integer, base, [])
end
defp do_digits(integer, base, acc) when abs(integer) < base, do: [integer | acc]
defp do_digits(integer, base, acc),
do: do_digits(div(integer, base), base, [rem(integer, base) | acc])
@doc """
Returns the integer represented by the ordered `digits`.
An optional `base` value may be provided representing the radix for the `digits`.
Base has to be an integer greater than or equal to `2`.
## Examples
iex> Integer.undigits([1, 2, 3])
123
iex> Integer.undigits([1, 0, 1])
101
iex> Integer.undigits([1, 4], 16)
20
iex> Integer.undigits([])
0
"""
@spec undigits([integer], pos_integer) :: integer
def undigits(digits, base \\ 10) when is_list(digits) and is_integer(base) and base >= 2 do
@spec undigits([integer], integer) :: integer
def undigits(digits, base \\ 10) when is_integer(base) do
do_undigits(digits, base, 0)
end
defp do_undigits([], _base, acc), do: acc
defp do_undigits([digit | _], base, _) when is_integer(digit) and digit >= base,
do: raise(ArgumentError, "invalid digit #{digit} in base #{base}")
defp do_undigits([digit | tail], base, acc) when is_integer(digit),
do: do_undigits(tail, base, acc * base + digit)
defp do_undigits([digit | tail], base, acc) do
do_undigits(tail, base, acc * base + digit)
end
@doc """
Parses a text representation of an integer.
Converts a binary from a text representation of an integer
in an optional base `base` to the corresponding integer.
An optional `base` to the corresponding integer can be provided.
If `base` is not given, 10 will be used.
If the base `base` is not given, base 10 will be used.
If successful, returns a tuple in the form of `{integer, remainder_of_binary}`.
If successful, returns a tuple of the form `{integer, remainder_of_binary}`.
Otherwise `:error`.
Raises an error if `base` is less than 2 or more than 36.
If you want to convert a string-formatted integer directly to an integer,
`String.to_integer/1` or `String.to_integer/2` can be used instead.
## Examples
iex> Integer.parse("34")
@@ -226,55 +131,73 @@ defmodule Integer do
** (ArgumentError) invalid base 38
"""
@spec parse(binary, 2..36) :: {integer, binary} | :error
@spec parse(binary, 2..36) :: {integer, binary} | :error | no_return
def parse(binary, base \\ 10)
def parse(_binary, base) when base not in 2..36 do
raise ArgumentError, "invalid base #{inspect(base)}"
def parse(binary, base) when is_integer(base) and base in 2..36 do
parse_in_base(binary, base)
end
def parse(binary, base) do
case count_digits(binary, base) do
0 ->
:error
def parse(_, base) do
raise ArgumentError, "invalid base #{base}"
end
count ->
{digits, rem} = :erlang.split_binary(binary, count)
{:erlang.binary_to_integer(digits, base), rem}
defp parse_in_base("-" <> bin, base) do
case do_parse(bin, base) do
:error -> :error
{number, remainder} -> {-number, remainder}
end
end
defp count_digits(<<sign, rest::binary>>, base) when sign in '+-' do
case count_digits_nosign(rest, base, 1) do
1 -> 0
count -> count
defp parse_in_base("+" <> bin, base) do
do_parse(bin, base)
end
defp parse_in_base(bin, base) when is_binary(bin) do
do_parse(bin, base)
end
defp do_parse(<<char, rest::binary>>, base) do
if valid_digit_in_base?(char, base) do
do_parse(rest, base, parse_digit(char, base))
else
:error
end
end
defp count_digits(<<rest::binary>>, base) do
count_digits_nosign(rest, base, 0)
end
defp do_parse(_, _), do: :error
digits = [{?0..?9, -?0}, {?A..?Z, 10 - ?A}, {?a..?z, 10 - ?a}]
for {chars, diff} <- digits,
char <- chars do
digit = char + diff
defp count_digits_nosign(<<unquote(char), rest::binary>>, base, count)
when base > unquote(digit) do
count_digits_nosign(rest, base, count + 1)
defp do_parse(<<char, rest::binary>>, base, acc) do
if valid_digit_in_base?(char, base) do
do_parse(rest, base, base * acc + parse_digit(char, base))
else
{acc, <<char, rest::binary>>}
end
end
defp count_digits_nosign(<<_::binary>>, _, count), do: count
defp do_parse(bitstring, _, acc) do
{acc, bitstring}
end
defp parse_digit(char, _) do
cond do
char in ?0..?9 -> char - ?0
char in ?A..?Z -> char - ?A + 10
true -> char - ?a + 10
end
end
defp valid_digit_in_base?(char, base) do
if base <= 10 do
char in ?0..(?0 + base - 1)
else
char in ?0..?9 or char in ?A..(?A + base - 11) or char in ?a..(?a + base - 11)
end
end
# TODO: Remove Integer.to_string/1 once the minimum supported version is
# Erlang/OTP 22, since it is covered by the now BIF Integer.to_string/2.
# Please reapply commit 2622fd6b0aa419a983a899a1fbdb5deefba3d85d.
@doc """
Returns a binary which corresponds to the text representation
of `integer`.
of `some_integer`.
Inlined by the compiler.
@@ -283,26 +206,15 @@ defmodule Integer do
iex> Integer.to_string(123)
"123"
iex> Integer.to_string(+456)
"456"
iex> Integer.to_string(-789)
"-789"
iex> Integer.to_string(0123)
"123"
"""
@spec to_string(integer) :: String.t()
def to_string(integer) do
:erlang.integer_to_binary(integer)
@spec to_string(integer) :: String.t
def to_string(some_integer) do
:erlang.integer_to_binary(some_integer)
end
@doc """
Returns a binary which corresponds to the text representation
of `integer` in the given `base`.
`base` can be an integer between 2 and 36.
of `some_integer` in base `base`.
Inlined by the compiler.
@@ -311,114 +223,42 @@ defmodule Integer do
iex> Integer.to_string(100, 16)
"64"
iex> Integer.to_string(-100, 16)
"-64"
iex> Integer.to_string(882_681_651, 36)
"ELIXIR"
"""
@spec to_string(integer, 2..36) :: String.t()
def to_string(integer, base) do
:erlang.integer_to_binary(integer, base)
@spec to_string(integer, 2..36) :: String.t
def to_string(some_integer, base) do
:erlang.integer_to_binary(some_integer, base)
end
# TODO: Remove Integer.to_charlist/1 once the minimum supported version is
# Erlang/OTP 22, since it is covered by the now BIF Integer.to_charlist/2.
# Please reapply commit 2622fd6b0aa419a983a899a1fbdb5deefba3d85d.
@doc """
Returns a charlist which corresponds to the text representation of the given `integer`.
Returns a char list which corresponds to the text representation of the given integer.
Inlined by the compiler.
## Examples
iex> Integer.to_charlist(123)
'123'
iex> Integer.to_charlist(+456)
'456'
iex> Integer.to_charlist(-789)
'-789'
iex> Integer.to_charlist(0123)
'123'
iex> Integer.to_char_list(7)
'7'
"""
@spec to_charlist(integer) :: charlist
def to_charlist(integer) do
:erlang.integer_to_list(integer)
@spec to_char_list(integer) :: char_list
def to_char_list(number) do
:erlang.integer_to_list(number)
end
@doc """
Returns a charlist which corresponds to the text representation of `integer` in the given `base`.
`base` can be an integer between 2 and 36.
Returns a char list which corresponds to the text representation of the
given integer in the given base.
Inlined by the compiler.
## Examples
iex> Integer.to_charlist(100, 16)
'64'
iex> Integer.to_charlist(-100, 16)
'-64'
iex> Integer.to_charlist(882_681_651, 36)
'ELIXIR'
iex> Integer.to_char_list(1023, 16)
'3FF'
"""
@spec to_charlist(integer, 2..36) :: charlist
def to_charlist(integer, base) do
:erlang.integer_to_list(integer, base)
@spec to_char_list(integer, 2..36) :: char_list
def to_char_list(number, base) do
:erlang.integer_to_list(number, base)
end
@doc """
Returns the greatest common divisor of the two given integers.
The greatest common divisor (GCD) of `integer1` and `integer2` is the largest positive
integer that divides both `integer1` and `integer2` without leaving a remainder.
By convention, `gcd(0, 0)` returns `0`.
## Examples
iex> Integer.gcd(2, 3)
1
iex> Integer.gcd(8, 12)
4
iex> Integer.gcd(8, -12)
4
iex> Integer.gcd(10, 0)
10
iex> Integer.gcd(7, 7)
7
iex> Integer.gcd(0, 0)
0
"""
@doc since: "1.5.0"
@spec gcd(integer, integer) :: non_neg_integer
def gcd(integer1, integer2) when is_integer(integer1) and is_integer(integer2) do
gcd_positive(abs(integer1), abs(integer2))
end
defp gcd_positive(0, integer2), do: integer2
defp gcd_positive(integer1, 0), do: integer1
defp gcd_positive(integer1, integer2), do: gcd_positive(integer2, rem(integer1, integer2))
@doc false
@deprecated "Use Integer.to_charlist/1 instead"
def to_char_list(integer), do: Integer.to_charlist(integer)
@doc false
@deprecated "Use Integer.to_charlist/2 instead"
def to_char_list(integer, base), do: Integer.to_charlist(integer, base)
end
+154 -366
View File
@@ -1,22 +1,25 @@
defmodule IO do
@moduledoc ~S"""
Functions handling input/output (IO).
@moduledoc """
Functions handling IO.
Many functions in this module expect an IO device as an argument.
An IO device must be a PID or an atom representing a process.
An IO device must be a pid or an atom representing a process.
For convenience, Elixir provides `:stdio` and `:stderr` as
shortcuts to Erlang's `:standard_io` and `:standard_error`.
The majority of the functions expect chardata. In case another type is given,
functions will convert those types to string via the `String.Chars` protocol
(as shown in typespecs). For more information on chardata, see the
"IO data" section below.
The majority of the functions expect char data, i.e. strings or
lists of characters and strings. In case another type is given,
functions will convert to string via the `String.Chars` protocol
(as shown in typespecs).
The functions starting with `bin*` expect iodata as an argument,
i.e. binaries or lists of bytes and binaries.
## IO devices
An IO device may be an atom or a PID. In case it is an atom,
An IO device may be an atom or a pid. In case it is an atom,
the atom must be the name of a registered process. In addition,
Elixir provides two shortcuts:
Elixir provides two shorcuts:
* `:stdio` - a shortcut for `:standard_io`, which maps to
the current `Process.group_leader/0` in Erlang
@@ -24,116 +27,32 @@ defmodule IO do
* `:stderr` - a shortcut for the named process `:standard_error`
provided in Erlang
IO devices maintain their position, which means subsequent calls to any
reading or writing functions will start from the place where the device
was last accessed. The position of files can be changed using the
IO devices maintain their position, that means subsequent calls to any
reading or writing functions will start from the place when the device
was last accessed. Position of files can be changed using the
`:file.position/2` function.
## IO data
IO data is a data type that can be used as a more efficient alternative to binaries
in certain situations.
A term of type **IO data** is a binary or a list containing bytes (integers in `0..255`)
or nested IO data. The type is recursive. Let's see an example of one of
the possible IO data representing the binary `"hello"`:
[?h, "el", ["l", [?o]]]
The built-in `t:iodata/0` type is defined in terms of `t:iolist/0`. An IO list is
the same as IO data but it doesn't allow for a binary at the top level (but binaries
are still allowed in the list itself).
### Use cases for IO data
IO data exists because often you need to do many append operations
on smaller chunks of binaries in order to create a bigger binary. However, in
Erlang and Elixir concatenating binaries will copy the concatenated binaries
into a new binary.
def email(username, domain) do
username <> "@" <> domain
end
In this function, creating the email address will copy the `username` and `domain`
binaries. Now imagine you want to use the resulting email inside another binary:
def welcome_message(name, username, domain) do
"Welcome #{name}, your email is: #{email(username, domain)}"
end
IO.puts(welcome_message("Meg", "meg", "example.com"))
#=> "Welcome Meg, your email is: meg@example.com"
Every time you concatenate binaries or use interpolation (`#{}`) you are making
copies of those binaries. However, in many cases you don't need the complete
binary while you create it, but only at the end to print it out or send it
somewhere. In such cases, you can construct the binary by creating IO data:
def email(username, domain) do
[username, ?@, domain]
end
def welcome_message(name, username, domain) do
["Welcome ", name, ", your email is: ", email(username, domain)]
end
IO.puts(welcome_message("Meg", "meg", "example.com"))
#=> "Welcome Meg, your email is: meg@example.com"
Building IO data is cheaper than concatenating binaries. Concatenating multiple
pieces of IO data just means putting them together inside a list since IO data
can be arbitrarily nested, and that's a cheap and efficient operation. Most of
the IO-based APIs, such as `:gen_tcp`, `IO`, etc, receive IO data and write it
to the socket directly without converting it to binary.
One drawback of IO data is that you can't do things like pattern match on the
first part of a piece of IO data like you can with a binary, because you usually
don't know the shape of the IO data. In those cases, you may need to convert it
to a binary by calling `iodata_to_binary/1`, which is reasonably efficient
since it's implemented natively in C. Other functionality, like computing the
length of IO data, can be computed directly on the iodata by calling `iodata_length/1`.
### Chardata
Erlang and Elixir also have the idea of `t:chardata/0`. Chardata is very
similar to IO data: the only difference is that integers in IO data represent
bytes while integers in chardata represent Unicode codepoints. Bytes
(`t:byte/0`) are integers in the `0..255` range, while Unicode codepoints
(`t:char/0`) are integers in the range `0..0x10FFFF`. The `IO` module provides
the `chardata_to_string/1` function for chardata as the "counter-part" of the
`iodata_to_binary/1` function for IO data.
If you try to use `iodata_to_binary/1` on chardata, it will result in an
argument error. For example, let's try to put a codepoint that is not
representable with one byte, like `?π`, inside IO data:
iex> IO.iodata_to_binary(["The symbol for pi is: ", ?π])
** (ArgumentError) argument error
If we use chardata instead, it will work as expected:
iex> IO.chardata_to_string(["The symbol for pi is: ", ?π])
"The symbol for pi is: π"
"""
@type device :: atom | pid
@type nodata :: {:error, term} | :eof
@type chardata :: String.t() | maybe_improper_list(char | chardata, String.t() | [])
@type chardata() :: :unicode.chardata()
defguardp is_iodata(data) when is_list(data) or is_binary(data)
import :erlang, only: [group_leader: 0]
defmacrop is_iodata(data) do
quote do
is_list(unquote(data)) or is_binary(unquote(data))
end
end
@doc """
Reads from the IO `device`.
The `device` is iterated by the given number of characters or line by line if
`:line` is given.
Alternatively, if `:all` is given, then whole `device` is returned.
Reads `count` characters from the IO device, a whole
`:line` or the whole device with `:all`.
It returns:
* `data` - the output characters
* `data` - the input characters
* `:eof` - end of file was encountered
@@ -145,7 +64,7 @@ defmodule IO do
empty string in case the device has reached EOF.
"""
@spec read(device, :all | :line | non_neg_integer) :: chardata | nodata
def read(device \\ :stdio, line_or_chars)
def read(device \\ group_leader, chars_or_line)
def read(device, :all) do
do_read_all(map_dev(device), "")
@@ -155,7 +74,7 @@ defmodule IO do
:io.get_line(map_dev(device), '')
end
def read(device, count) when is_integer(count) and count >= 0 do
def read(device, count) when count >= 0 do
:io.get_chars(map_dev(device), '', count)
end
@@ -168,15 +87,12 @@ defmodule IO do
end
@doc """
Reads from the IO `device`. The operation is Unicode unsafe.
The `device` is iterated by the given number of bytes or line by line if
`:line` is given.
Alternatively, if `:all` is given, then whole `device` is returned.
Reads `count` characters from the IO device, a whole
`:line` or the whole device with `:all`.
It returns:
* `data` - the output bytes
* `data` - the input characters
* `:eof` - end of file was encountered
@@ -187,11 +103,11 @@ defmodule IO do
If `:all` is given, `:eof` is never returned, but an
empty string in case the device has reached EOF.
Note: do not use this function on IO devices in Unicode mode
Note: do not use this function on IO devices in unicode mode
as it will return the wrong result.
"""
@spec binread(device, :all | :line | non_neg_integer) :: iodata | nodata
def binread(device \\ :stdio, line_or_chars)
def binread(device \\ group_leader, chars_or_line)
def binread(device, :all) do
do_binread_all(map_dev(device), "")
@@ -204,7 +120,7 @@ defmodule IO do
end
end
def binread(device, count) when is_integer(count) and count >= 0 do
def binread(device, count) when count >= 0 do
case :file.read(map_dev(device), count) do
{:ok, data} -> data
other -> other
@@ -221,219 +137,87 @@ defmodule IO do
end
@doc """
Writes `chardata` to the given `device`.
By default, the `device` is the standard output.
## Examples
IO.write("sample")
#=> sample
IO.write(:stderr, "error")
#=> error
"""
@spec write(device, chardata | String.Chars.t()) :: :ok
def write(device \\ :stdio, chardata) do
:io.put_chars(map_dev(device), to_chardata(chardata))
end
@doc """
Writes `iodata` to the given `device`.
This operation is meant to be used with "raw" devices
that are started without an encoding. The given `iodata`
is written as is to the device, without conversion. For
more information on IO data, see the "IO data" section in
the module documentation.
Use `write/2` for devices with encoding.
Important: do **not** use this function on IO devices in
Unicode mode as it will write the wrong data. In particular,
the standard IO device is set to Unicode by default, so writing
to stdio with this function will likely result in the wrong data
being sent down the wire.
"""
@spec binwrite(device, iodata) :: :ok | {:error, term}
def binwrite(device \\ :stdio, iodata) when is_iodata(iodata) do
:file.write(map_dev(device), iodata)
end
@doc """
Writes `item` to the given `device`, similar to `write/2`,
but adds a newline at the end.
By default, the `device` is the standard output. It returns `:ok`
if it succeeds.
## Examples
IO.puts("Hello World!")
#=> Hello World!
IO.puts(:stderr, "error")
#=> error
"""
@spec puts(device, chardata | String.Chars.t()) :: :ok
def puts(device \\ :stdio, item) do
:io.put_chars(map_dev(device), [to_chardata(item), ?\n])
end
@doc """
Writes a `message` to stderr, along with the given `stacktrace`.
This function also notifies the compiler a warning was printed
(in case --warnings-as-errors was enabled). It returns `:ok`
if it succeeds.
An empty list can be passed to avoid stacktrace printing.
## Examples
stacktrace = [{MyApp, :main, 1, [file: 'my_app.ex', line: 4]}]
IO.warn("variable bar is unused", stacktrace)
#=> warning: variable bar is unused
#=> my_app.ex:4: MyApp.main/1
"""
@spec warn(chardata | String.Chars.t(), Exception.stacktrace()) :: :ok
def warn(message, []) do
message = [to_chardata(message), ?\n]
:elixir_errors.io_warn(nil, nil, message, message)
end
def warn(message, [{_, _, _, opts} | _] = stacktrace) do
message = to_chardata(message)
formatted_trace = Enum.map_join(stacktrace, "\n ", &Exception.format_stacktrace_entry(&1))
line = opts[:line]
file = opts[:file]
:elixir_errors.io_warn(
line,
file && List.to_string(file),
message,
[message, ?\n, " ", formatted_trace, ?\n]
)
end
@doc """
Writes a `message` to stderr, along with the current stacktrace.
Writes the given argument to the given device.
By default the device is the standard output.
It returns `:ok` if it succeeds.
## Examples
IO.warn("variable bar is unused")
#=> warning: variable bar is unused
#=> (iex) evaluator.ex:108: IEx.Evaluator.eval/4
IO.write "sample"
#=> "sample"
IO.write :stderr, "error"
#=> "error"
"""
@spec warn(chardata | String.Chars.t()) :: :ok
def warn(message) do
{:current_stacktrace, stacktrace} = Process.info(self(), :current_stacktrace)
warn(message, Enum.drop(stacktrace, 2))
@spec write(device, chardata | String.Chars.t) :: :ok
def write(device \\ group_leader(), item) do
:io.put_chars map_dev(device), to_chardata(item)
end
@doc """
Inspects and writes the given `item` to the device.
Writes the given argument to the given device
as a binary, no unicode conversion happens.
It's important to note that it returns the given `item` unchanged.
This makes it possible to "spy" on values by inserting an
`IO.inspect/2` call almost anywhere in your code, for example,
in the middle of a pipeline.
Check `write/2` for more information.
Note: do not use this function on IO devices in unicode mode
as it will return the wrong result.
"""
@spec binwrite(device, iodata) :: :ok | {:error, term}
def binwrite(device \\ group_leader(), item) when is_iodata(item) do
:file.write map_dev(device), item
end
@doc """
Writes the argument to the device, similar to `write/2`,
but adds a newline at the end. The argument is expected
to be a chardata.
"""
@spec puts(device, chardata | String.Chars.t) :: :ok
def puts(device \\ group_leader(), item) do
erl_dev = map_dev(device)
:io.put_chars erl_dev, [to_chardata(item), ?\n]
end
@doc """
Inspects and writes the given argument to the device.
It enables pretty printing by default with width of
80 characters. The width can be changed by explicitly
passing the `:width` option.
The output can be decorated with a label, by providing the `:label`
option to easily distinguish it from other `IO.inspect/2` calls.
The label will be printed before the inspected `item`.
See `Inspect.Opts` for a full list of remaining formatting options.
See `Inspect.Opts` for a full list of options.
## Examples
IO.inspect(<<0, 1, 2>>, width: 40)
Prints:
<<0, 1, 2>>
We can use the `:label` option to decorate the output:
IO.inspect(1..100, label: "a wonderful range")
Prints:
a wonderful range: 1..100
The `:label` option is especially useful with pipelines:
[1, 2, 3]
|> IO.inspect(label: "before")
|> Enum.map(&(&1 * 2))
|> IO.inspect(label: "after")
|> Enum.sum()
Prints:
before: [1, 2, 3]
after: [2, 4, 6]
IO.inspect Process.list, width: 40
"""
@spec inspect(item, keyword) :: item when item: var
@spec inspect(item, Keyword.t) :: item when item: var
def inspect(item, opts \\ []) do
inspect(:stdio, item, opts)
inspect group_leader(), item, opts
end
@doc """
Inspects `item` according to the given options using the IO `device`.
Inspects the item with options using the given device.
See `inspect/2` for a full list of options.
See `Inspect.Opts` for a full list of options.
"""
@spec inspect(device, item, keyword) :: item when item: var
@spec inspect(device, item, Keyword.t) :: item when item: var
def inspect(device, item, opts) when is_list(opts) do
label = if label = opts[:label], do: [to_chardata(label), ": "], else: []
opts = struct(Inspect.Opts, opts)
doc = Inspect.Algebra.group(Inspect.Algebra.to_doc(item, opts))
chardata = Inspect.Algebra.format(doc, opts.width)
puts(device, [label, chardata])
opts = struct(Inspect.Opts, opts)
iodata = Inspect.Algebra.format(Inspect.Algebra.to_doc(item, opts), opts.width)
puts device, iodata
item
end
@doc """
Gets a number of bytes from IO device `:stdio`.
If `:stdio` is a Unicode device, `count` implies
the number of Unicode code points to be retrieved.
Gets a number of bytes from the io device. If the
io device is a unicode device, `count` implies
the number of unicode codepoints to be retrieved.
Otherwise, `count` is the number of raw bytes to be retrieved.
See `IO.getn/3` for a description of return values.
"""
@spec getn(chardata | String.Chars.t(), pos_integer) :: chardata | nodata
@spec getn(device, chardata | String.Chars.t()) :: chardata | nodata
def getn(prompt, count \\ 1)
def getn(prompt, count) when is_integer(count) and count > 0 do
getn(:stdio, prompt, count)
end
def getn(device, prompt) when not is_integer(prompt) do
getn(device, prompt, 1)
end
@doc """
Gets a number of bytes from the IO `device`.
If the IO `device` is a Unicode device, `count` implies
the number of Unicode code points to be retrieved.
Otherwise, `count` is the number of raw bytes to be retrieved.
It returns:
* `data` - the input characters
@@ -443,15 +227,32 @@ defmodule IO do
* `{:error, reason}` - other (rare) error condition;
for instance, `{:error, :estale}` if reading from an
NFS volume
"""
@spec getn(device, chardata | String.Chars.t(), pos_integer) :: chardata | nodata
def getn(device, prompt, count) when is_integer(count) and count > 0 do
@spec getn(chardata | String.Chars.t, pos_integer) :: chardata | nodata
@spec getn(device, chardata | String.Chars.t) :: chardata | nodata
def getn(prompt, count \\ 1)
def getn(prompt, count) when is_integer(count) do
getn(group_leader, prompt, count)
end
def getn(device, prompt) do
getn(device, prompt, 1)
end
@doc """
Gets a number of bytes from the io device. If the
io device is a unicode device, `count` implies
the number of unicode codepoints to be retrieved.
Otherwise, `count` is the number of raw bytes to be retrieved.
"""
@spec getn(device, chardata | String.Chars.t, pos_integer) :: chardata | nodata
def getn(device, prompt, count) do
:io.get_chars(map_dev(device), to_chardata(prompt), count)
end
@doc ~S"""
Reads a line from the IO `device`.
@doc """
Reads a line from the IO device.
It returns:
@@ -468,25 +269,24 @@ defmodule IO do
To display "What is your name?" as a prompt and await user input:
IO.gets("What is your name?\n")
IO.gets "What is your name?"
"""
@spec gets(device, chardata | String.Chars.t()) :: chardata | nodata
def gets(device \\ :stdio, prompt) do
@spec gets(device, chardata | String.Chars.t) :: chardata | nodata
def gets(device \\ group_leader(), prompt) do
:io.get_line(map_dev(device), to_chardata(prompt))
end
@doc """
Converts the IO `device` into an `IO.Stream`.
Converts the io device into a `IO.Stream`.
An `IO.Stream` implements both `Enumerable` and
`Collectable`, allowing it to be used for both read
and write.
The `device` is iterated by the given number of characters or line by line if
`:line` is given.
The device is iterated line by line if `:line` is given or
by a given number of codepoints.
This reads from the IO as UTF-8. Check out
This reads the IO as utf-8. Check out
`IO.binstream/2` to handle the IO as a raw binary.
Note that an IO stream has side effects and every time
@@ -497,49 +297,41 @@ defmodule IO do
Here is an example on how we mimic an echo server
from the command line:
Enum.each(IO.stream(:stdio, :line), &IO.write(&1))
Enum.each IO.stream(:stdio, :line), &IO.write(&1)
"""
@spec stream(device, :line | pos_integer) :: Enumerable.t()
def stream(device, line_or_codepoints)
when line_or_codepoints == :line
when is_integer(line_or_codepoints) and line_or_codepoints > 0 do
@spec stream(device, :line | pos_integer) :: Enumerable.t
def stream(device, line_or_codepoints) do
IO.Stream.__build__(map_dev(device), false, line_or_codepoints)
end
@doc """
Converts the IO `device` into an `IO.Stream`. The operation is Unicode unsafe.
Converts the IO device into a `IO.Stream`.
An `IO.Stream` implements both `Enumerable` and
`Collectable`, allowing it to be used for both read
and write.
The `device` is iterated by the given number of bytes or line by line if
`:line` is given.
This reads from the IO device as a raw binary.
The device is iterated line by line or by a number of bytes.
This reads the IO device as a raw binary.
Note that an IO stream has side effects and every time
you go over the stream you may get different results.
Finally, do not use this function on IO devices in Unicode
Finally, do not use this function on IO devices in unicode
mode as it will return the wrong result.
"""
@spec binstream(device, :line | pos_integer) :: Enumerable.t()
def binstream(device, line_or_bytes)
when line_or_bytes == :line
when is_integer(line_or_bytes) and line_or_bytes > 0 do
@spec binstream(device, :line | pos_integer) :: Enumerable.t
def binstream(device, line_or_bytes) do
IO.Stream.__build__(map_dev(device), true, line_or_bytes)
end
@doc """
Converts chardata into a string.
Converts chardata (a list of integers representing codepoints,
lists and strings) into a string.
For more information about chardata, see the ["Chardata"](#module-chardata)
section in the module documentation.
In case the conversion fails, it raises an `UnicodeConversionError`.
If a string is given, it returns the string itself.
In case the conversion fails, it raises a `UnicodeConversionError`.
If a string is given, returns the string itself.
## Examples
@@ -549,30 +341,33 @@ defmodule IO do
iex> IO.chardata_to_string([0x0061, "bc"])
"abc"
iex> IO.chardata_to_string("string")
"string"
"""
@spec chardata_to_string(chardata) :: String.t()
@spec chardata_to_string(chardata) :: String.t | no_return
def chardata_to_string(string) when is_binary(string) do
string
end
def chardata_to_string(list) when is_list(list) do
List.to_string(list)
case :unicode.characters_to_binary(list) do
result when is_binary(result) ->
result
{:error, encoded, rest} ->
raise UnicodeConversionError, encoded: encoded, rest: rest, kind: :invalid
{:incomplete, encoded, rest} ->
raise UnicodeConversionError, encoded: encoded, rest: rest, kind: :incomplete
end
end
@doc """
Converts IO data into a binary
Converts iodata (a list of integers representing bytes, lists
and binaries) into a binary.
The operation is Unicode unsafe.
Notice that this function treats integers in the given IO data as
raw bytes and does not perform any kind of encoding conversion.
If you want to convert from a charlist to a UTF-8-encoded string,
use `chardata_to_string/1` instead. For more information about
IO data and chardata, see the ["IO data"](#module-io-data) section in the
module documentation.
Notice that this function treats lists of integers as raw bytes
and does not perform any kind of encoding conversion. If you want
to convert from a char list to a string (UTF-8 encoded), please
use `chardata_to_string/1` instead.
If this function receives a binary, the same binary is returned.
@@ -583,7 +378,7 @@ defmodule IO do
iex> bin1 = <<1, 2, 3>>
iex> bin2 = <<4, 5>>
iex> bin3 = <<6>>
iex> IO.iodata_to_binary([bin1, 1, [2, 3, bin2], 4 | bin3])
iex> IO.iodata_to_binary([bin1, 1, [2, 3, bin2], 4|bin3])
<<1, 2, 3, 1, 2, 3, 4, 5, 4, 6>>
iex> bin = <<1, 2, 3>>
@@ -592,52 +387,45 @@ defmodule IO do
"""
@spec iodata_to_binary(iodata) :: binary
def iodata_to_binary(iodata) do
:erlang.iolist_to_binary(iodata)
def iodata_to_binary(item) do
:erlang.iolist_to_binary(item)
end
@doc """
Returns the size of an IO data.
For more information about IO data, see the ["IO data"](#module-io-data)
section in the module documentation.
Returns the size of an iodata.
Inlined by the compiler.
## Examples
iex> IO.iodata_length([1, 2 | <<3, 4>>])
iex> IO.iodata_length([1, 2|<<3, 4>>])
4
"""
@spec iodata_length(iodata) :: non_neg_integer
def iodata_length(iodata) do
:erlang.iolist_size(iodata)
def iodata_length(item) do
:erlang.iolist_size(item)
end
@doc false
def each_stream(device, line_or_codepoints) do
case read(device, line_or_codepoints) do
def each_stream(device, what) do
case read(device, what) do
:eof ->
{:halt, device}
{:error, reason} ->
raise IO.StreamError, reason: reason
data ->
{[data], device}
end
end
@doc false
def each_binstream(device, line_or_chars) do
case binread(device, line_or_chars) do
def each_binstream(device, what) do
case binread(device, what) do
:eof ->
{:halt, device}
{:error, reason} ->
raise IO.StreamError, reason: reason
data ->
{[data], device}
end
@@ -645,8 +433,8 @@ defmodule IO do
@compile {:inline, map_dev: 1, to_chardata: 1}
# Map the Elixir names for standard IO and error to Erlang names
defp map_dev(:stdio), do: :standard_io
# Map the Elixir names for standard io and error to Erlang names
defp map_dev(:stdio), do: :standard_io
defp map_dev(:stderr), do: :standard_error
defp map_dev(other) when is_atom(other) or is_pid(other) or is_tuple(other), do: other
+83 -123
View File
@@ -25,10 +25,9 @@ defmodule IO.ANSI do
import IO.ANSI.Sequence
@type ansicode :: atom
@type ansilist ::
maybe_improper_list(char | ansicode | binary | ansilist, binary | ansicode | [])
@type ansidata :: ansilist | ansicode | binary
@typep ansicode :: atom()
@typep ansilist :: maybe_improper_list(char() | ansicode() | binary() | ansilist(), binary() | ansicode() | [])
@type ansidata :: ansilist() | ansicode() | binary()
@doc """
Checks if ANSI coloring is supported and enabled on this machine.
@@ -43,8 +42,8 @@ defmodule IO.ANSI do
Application.get_env(:elixir, :ansi_enabled, false)
end
@doc "Sets foreground color."
@spec color(0..255) :: String.t()
@doc "Sets foreground color"
@spec color(0..255) :: String.t
def color(code) when code in 0..255, do: "\e[38;5;#{code}m"
@doc ~S"""
@@ -52,13 +51,13 @@ defmodule IO.ANSI do
Valid values for each color are in the range 0 to 5.
"""
@spec color(0..5, 0..5, 0..5) :: String.t()
@spec color(0..5, 0..5, 0..5) :: String.t
def color(r, g, b) when r in 0..5 and g in 0..5 and b in 0..5 do
color(16 + 36 * r + 6 * g + b)
color(16 + (36 * r) + (6 * g) + b)
end
@doc "Sets background color."
@spec color_background(0..255) :: String.t()
@doc "Sets background color"
@spec color_background(0..255) :: String.t
def color_background(code) when code in 0..255, do: "\e[48;5;#{code}m"
@doc ~S"""
@@ -66,145 +65,106 @@ defmodule IO.ANSI do
Valid values for each color are in the range 0 to 5.
"""
@spec color_background(0..5, 0..5, 0..5) :: String.t()
@spec color_background(0..5, 0..5, 0..5) :: String.t
def color_background(r, g, b) when r in 0..5 and g in 0..5 and b in 0..5 do
color_background(16 + 36 * r + 6 * g + b)
color_background(16 + (36 * r) + (6 * g) + b)
end
@doc "Resets all attributes."
defsequence(:reset, 0)
@doc "Resets all attributes"
defsequence :reset, 0
@doc "Bright (increased intensity) or bold."
defsequence(:bright, 1)
@doc "Bright (increased intensity) or Bold"
defsequence :bright, 1
@doc "Faint (decreased intensity). Not widely supported."
defsequence(:faint, 2)
@doc "Faint (decreased intensity), not widely supported"
defsequence :faint, 2
@doc "Italic: on. Not widely supported. Sometimes treated as inverse."
defsequence(:italic, 3)
@doc "Italic: on. Not widely supported. Sometimes treated as inverse"
defsequence :italic, 3
@doc "Underline: single."
defsequence(:underline, 4)
@doc "Underline: Single"
defsequence :underline, 4
@doc "Blink: slow. Less than 150 per minute."
defsequence(:blink_slow, 5)
@doc "Blink: Slow. Less than 150 per minute"
defsequence :blink_slow, 5
@doc "Blink: rapid. MS-DOS ANSI.SYS; 150 per minute or more; not widely supported."
defsequence(:blink_rapid, 6)
@doc "Blink: Rapid. MS-DOS ANSI.SYS; 150 per minute or more; not widely supported"
defsequence :blink_rapid, 6
@doc "Image: negative. Swap foreground and background."
defsequence(:inverse, 7)
@doc "Image: Negative. Swap foreground and background"
defsequence :inverse, 7
@doc "Image: negative. Swap foreground and background."
defsequence(:reverse, 7)
@doc "Image: Negative. Swap foreground and background"
defsequence :reverse, 7
@doc "Conceal. Not widely supported."
defsequence(:conceal, 8)
@doc "Conceal. Not widely supported"
defsequence :conceal, 8
@doc "Crossed-out. Characters legible, but marked for deletion. Not widely supported."
defsequence(:crossed_out, 9)
@doc "Crossed-out. Characters legible, but marked for deletion. Not widely supported"
defsequence :crossed_out, 9
@doc "Sets primary (default) font."
defsequence(:primary_font, 10)
@doc "Sets primary (default) font"
defsequence :primary_font, 10
for font_n <- [1, 2, 3, 4, 5, 6, 7, 8, 9] do
@doc "Sets alternative font #{font_n}."
defsequence(:"font_#{font_n}", font_n + 10)
@doc "Sets alternative font #{font_n}"
defsequence :"font_#{font_n}", font_n + 10
end
@doc "Normal color or intensity."
defsequence(:normal, 22)
@doc "Normal color or intensity"
defsequence :normal, 22
@doc "Not italic."
defsequence(:not_italic, 23)
@doc "Not italic"
defsequence :not_italic, 23
@doc "Underline: none."
defsequence(:no_underline, 24)
@doc "Underline: None"
defsequence :no_underline, 24
@doc "Blink: off."
defsequence(:blink_off, 25)
@doc "Image: positive. Normal foreground and background."
defsequence(:inverse_off, 27)
@doc "Image: positive. Normal foreground and background."
defsequence(:reverse_off, 27)
@doc "Blink: off"
defsequence :blink_off, 25
colors = [:black, :red, :green, :yellow, :blue, :magenta, :cyan, :white]
for {color, code} <- Enum.with_index(colors) do
@doc "Sets foreground color to #{color}."
defsequence(color, code + 30)
@doc "Sets foreground color to #{color}"
defsequence color, code + 30
@doc "Sets foreground color to light #{color}."
defsequence(:"light_#{color}", code + 90)
@doc "Sets background color to #{color}."
defsequence(:"#{color}_background", code + 40)
@doc "Sets background color to light #{color}."
defsequence(:"light_#{color}_background", code + 100)
@doc "Sets background color to #{color}"
defsequence :"#{color}_background", code + 40
end
@doc "Default text color."
defsequence(:default_color, 39)
@doc "Default text color"
defsequence :default_color, 39
@doc "Default background color."
defsequence(:default_background, 49)
@doc "Default background color"
defsequence :default_background, 49
@doc "Framed."
defsequence(:framed, 51)
@doc "Framed"
defsequence :framed, 51
@doc "Encircled."
defsequence(:encircled, 52)
@doc "Encircled"
defsequence :encircled, 52
@doc "Overlined."
defsequence(:overlined, 53)
@doc "Overlined"
defsequence :overlined, 53
@doc "Not framed or encircled."
defsequence(:not_framed_encircled, 54)
@doc "Not framed or encircled"
defsequence :not_framed_encircled, 54
@doc "Not overlined."
defsequence(:not_overlined, 55)
@doc "Not overlined"
defsequence :not_overlined, 55
@doc "Sends cursor home."
defsequence(:home, "", "H")
@doc "Sends cursor home"
defsequence :home, "", "H"
@doc """
Sends cursor to the absolute position specified by `line` and `column`.
@doc "Clears screen"
defsequence :clear, "2", "J"
Line `0` and column `0` would mean the top left corner.
"""
@spec cursor(non_neg_integer, non_neg_integer) :: String.t()
def cursor(line, column)
when is_integer(line) and line >= 0 and is_integer(column) and column >= 0 do
"\e[#{line};#{column}H"
end
@doc "Sends cursor `lines` up."
@spec cursor_up(pos_integer) :: String.t()
def cursor_up(lines \\ 1) when is_integer(lines) and lines >= 1, do: "\e[#{lines}A"
@doc "Sends cursor `lines` down."
@spec cursor_down(pos_integer) :: String.t()
def cursor_down(lines \\ 1) when is_integer(lines) and lines >= 1, do: "\e[#{lines}B"
@doc "Sends cursor `columns` to the right."
@spec cursor_right(pos_integer) :: String.t()
def cursor_right(columns \\ 1) when is_integer(columns) and columns >= 1, do: "\e[#{columns}C"
@doc "Sends cursor `columns` to the left."
@spec cursor_left(pos_integer) :: String.t()
def cursor_left(columns \\ 1) when is_integer(columns) and columns >= 1, do: "\e[#{columns}D"
@doc "Clears screen."
defsequence(:clear, "2", "J")
@doc "Clears line."
defsequence(:clear_line, "2", "K")
@doc "Clears line"
defsequence :clear_line, "2", "K"
defp format_sequence(other) do
raise ArgumentError, "invalid ANSI sequence specification: #{inspect(other)}"
raise ArgumentError, "invalid ANSI sequence specification: #{inspect other}"
end
@doc ~S"""
@@ -226,8 +186,8 @@ defmodule IO.ANSI do
[[[[[[], "Hello, "] | "\e[31m"] | "\e[1m"], "world!"] | "\e[0m"]
"""
def format(chardata, emit? \\ enabled?()) when is_boolean(emit?) do
do_format(chardata, [], [], emit?, :maybe)
def format(chardata, emit \\ enabled?) when is_boolean(emit) do
do_format(chardata, [], [], emit, :maybe)
end
@doc ~S"""
@@ -237,7 +197,7 @@ defmodule IO.ANSI do
The named sequences are represented by atoms.
An optional boolean parameter can be passed to enable or disable
emitting actual ANSI codes. When `false`, no ANSI codes will be emitted.
emitting actual ANSI codes. When `false`, no ANSI codes will emitted.
By default checks if ANSI is enabled using the `enabled?/0` function.
## Examples
@@ -246,12 +206,12 @@ defmodule IO.ANSI do
[[[[[[] | "\e[1m"], 87], 111], 114], 100]
"""
def format_fragment(chardata, emit? \\ enabled?()) when is_boolean(emit?) do
do_format(chardata, [], [], emit?, false)
def format_fragment(chardata, emit \\ enabled?) when is_boolean(emit) do
do_format(chardata, [], [], emit, false)
end
defp do_format([term | rest], rem, acc, emit?, append_reset) do
do_format(term, [rest | rem], acc, emit?, append_reset)
defp do_format([term | rest], rem, acc, emit, append_reset) do
do_format(term, [rest | rem], acc, emit, append_reset)
end
defp do_format(term, rem, acc, true, append_reset) when is_atom(term) do
@@ -262,19 +222,19 @@ defmodule IO.ANSI do
do_format([], rem, acc, false, append_reset)
end
defp do_format(term, rem, acc, emit?, append_reset) when not is_list(term) do
do_format([], rem, [acc, term], emit?, append_reset)
defp do_format(term, rem, acc, emit, append_reset) when not is_list(term) do
do_format([], rem, [acc | [term]], emit, append_reset)
end
defp do_format([], [next | rest], acc, emit?, append_reset) do
do_format(next, rest, acc, emit?, append_reset)
defp do_format([], [next | rest], acc, emit, append_reset) do
do_format(next, rest, acc, emit, append_reset)
end
defp do_format([], [], acc, true, true) do
[acc | IO.ANSI.reset()]
[acc | IO.ANSI.reset]
end
defp do_format([], [], acc, _emit?, _append_reset) do
defp do_format([], [], acc, _emit, _append_reset) do
acc
end
end
+130 -234
View File
@@ -2,41 +2,35 @@ defmodule IO.ANSI.Docs do
@moduledoc false
@bullets [?*, ?-, ?+]
@spaces [" ", "\n", "\t"]
@doc """
The default options used by this module.
The supported keys are:
The supported values are:
* `:enabled` - toggles coloring on and off (true)
* `:doc_bold` - bold text (bright)
* `:doc_code` - code blocks (cyan)
* `:doc_headings` - h1, h2, h3, h4, h5, h6 headings (yellow)
* `:doc_metadata` - documentation metadata keys (yellow)
* `:doc_code` - code blocks (cyan, bright)
* `:doc_headings` - h1 and h2 headings (yellow, bright)
* `:doc_inline_code` - inline code (cyan)
* `:doc_table_heading` - the style for table headings
* `:doc_title` - top level heading (reverse, yellow)
* `:doc_table_heading` - style for table headings
* `:doc_title` - top level heading (reverse, yellow, bright)
* `:doc_underline` - underlined text (underline)
* `:width` - the width to format the text (80)
Values for the color settings are strings with
comma-separated ANSI values.
"""
@spec default_options() :: keyword
def default_options do
[
enabled: true,
doc_bold: [:bright],
doc_code: [:cyan],
doc_headings: [:yellow],
doc_metadata: [:yellow],
doc_inline_code: [:cyan],
doc_table_heading: [:reverse],
doc_title: [:reverse, :yellow],
doc_underline: [:underline],
width: 80
]
[enabled: true,
doc_bold: [:bright],
doc_code: [:cyan, :bright],
doc_headings: [:yellow],
doc_inline_code: [:cyan],
doc_table_heading: [:reverse],
doc_title: [:reverse, :yellow],
doc_underline: [:underline],
width: 80]
end
@doc """
@@ -44,70 +38,27 @@ defmodule IO.ANSI.Docs do
See `default_options/0` for docs on the supported options.
"""
@spec print_heading(String.t(), keyword) :: :ok
def print_heading(heading, options \\ []) do
IO.puts(IO.ANSI.reset())
options = Keyword.merge(default_options(), options)
width = options[:width]
IO.puts IO.ANSI.reset
options = Keyword.merge(default_options, options)
width = options[:width]
padding = div(width + String.length(heading), 2)
heading = heading |> String.pad_leading(padding) |> String.pad_trailing(width)
heading = heading |> String.rjust(padding) |> String.ljust(width)
write(:doc_title, heading, options)
newline_after_block()
end
@doc """
Prints documentation metadata (only `delegate_to`, `deprecated`, `guard`, and `since` for now).
See `default_options/0` for docs on the supported options.
"""
@spec print_metadata(map, keyword) :: :ok
def print_metadata(metadata, options \\ []) when is_map(metadata) do
options = Keyword.merge(default_options(), options)
print_each_metadata(metadata, options) && IO.write("\n")
end
@metadata_filter [:deprecated, :guard, :since]
defp print_each_metadata(metadata, options) do
Enum.reduce(metadata, false, fn
{key, value}, _printed when is_binary(value) and key in @metadata_filter ->
label = metadata_label(key, options)
indent = String.duplicate(" ", length_without_escape(label, 0) + 1)
write_with_wrap([label | String.split(value, @spaces)], options[:width], indent, true)
{key, value}, _printed when is_boolean(value) and key in @metadata_filter ->
IO.puts([metadata_label(key, options), ' ', to_string(value)])
{:delegate_to, {m, f, a}}, _printed ->
label = metadata_label(:delegate_to, options)
IO.puts([label, ' ', Exception.format_mfa(m, f, a)])
_metadata, printed ->
printed
end)
end
defp metadata_label(key, options) do
if options[:enabled] do
"#{color(:doc_metadata, options)}#{key}:#{IO.ANSI.reset()}"
else
"#{key}:"
end
newline_after_block
end
@doc """
Prints the documentation body.
In addition to the printing string, takes a set of `options`
defined in `default_options/0`.
In addition to the printing string, takes a set of options
defined in `default_options/1`.
"""
@spec print(String.t(), keyword) :: :ok
def print(doc, options \\ []) do
options = Keyword.merge(default_options(), options)
options = Keyword.merge(default_options, options)
doc
|> String.split(["\r\n", "\n"], trim: false)
|> Enum.map(&String.trim_trailing/1)
|> Enum.map(&String.rstrip/1)
|> process([], "", options)
end
@@ -115,28 +66,22 @@ defmodule IO.ANSI.Docs do
write_text(text, indent, options)
end
defp process(["# " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
defp process(["# " <> heading | rest], text, indent, options) do
write_text(text, indent, options)
write_h1(String.strip(heading), options)
process(rest, [], "", options)
end
defp process(["## " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
defp process(["## " <> heading | rest], text, indent, options) do
write_text(text, indent, options)
write_h2(String.strip(heading), options)
process(rest, [], "", options)
end
defp process(["### " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
end
defp process(["#### " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
end
defp process(["##### " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
end
defp process(["###### " <> _ = heading | rest], text, indent, options) do
write_heading(heading, rest, text, indent, options)
defp process(["### " <> heading | rest], text, indent, options) do
write_text(text, indent, options)
write_h3(String.strip(heading), indent, options)
process(rest, [], "", options)
end
defp process(["" | rest], text, indent, options) do
@@ -157,18 +102,15 @@ defmodule IO.ANSI.Docs do
process_fenced_code_block(rest, text, indent, options, _delimiter = "~~~")
end
defp process(all = [line | rest], text, indent, options) do
defp process(all=[line | rest], text, indent, options) do
{stripped, count} = strip_spaces(line, 0, :infinity)
cond do
link_label?(stripped, count) ->
write_text([line], indent, options, true)
process(rest, text, indent, options)
table_line?(stripped) and rest != [] and table_line?(hd(rest)) ->
write_text(text, indent, options)
process_table(all, indent, options)
true ->
process_rest(stripped, rest, count, text, indent, options)
end
@@ -176,11 +118,19 @@ defmodule IO.ANSI.Docs do
## Headings
defp write_heading(heading, rest, text, indent, options) do
write_text(text, indent, options)
defp write_h1(heading, options) do
write_h2(String.upcase(heading), options)
end
defp write_h2(heading, options) do
write(:doc_headings, heading, options)
newline_after_block()
process(rest, [], "", options)
newline_after_block
end
defp write_h3(heading, indent, options) do
IO.write(indent)
write(:doc_headings, heading, options)
newline_after_block
end
## Lists
@@ -190,15 +140,12 @@ defmodule IO.ANSI.Docs do
<<bullet, ?\s, item::binary>> when bullet in @bullets ->
write_text(text, indent, options)
process_list("• ", item, rest, count, indent, options)
<<d1, ?., ?\s, item::binary>> when d1 in ?0..?9 ->
write_text(text, indent, options)
process_list(<<d1, ?., ?\s>>, item, rest, count, indent, options)
<<d1, d2, ?., ?\s, item::binary>> when d1 in ?0..?9 and d2 in ?0..?9 ->
write_text(text, indent, options)
process_list(<<d1, d2, ?., ?\s>>, item, rest, count, indent, options)
_ ->
process(rest, [stripped | text], indent, options)
end
@@ -206,7 +153,7 @@ defmodule IO.ANSI.Docs do
defp process_list(entry, line, rest, count, indent, options) do
# The first list always win some extra padding
entry = if indent == "", do: " " <> entry, else: entry
if indent == "", do: entry = " " <> entry
new_indent = indent <> String.duplicate(" ", String.length(entry))
{contents, rest, done} = process_list_next(rest, count, byte_size(new_indent), [])
@@ -218,7 +165,6 @@ defmodule IO.ANSI.Docs do
defp process_list_next([line | rest], count, max, acc) do
{stripped, next_count} = strip_spaces(line, 0, max)
case process_list_next_kind(stripped, rest, count, next_count) do
:next -> process_list_next(rest, count, max, [stripped | acc])
:done -> {Enum.reverse(acc), [line | rest], true}
@@ -234,20 +180,14 @@ defmodule IO.ANSI.Docs do
case {stripped, rest} do
{<<bullet, ?\s, _::binary>>, _} when bullet in @bullets and next_count <= count ->
:list
{<<d1, ?., ?\s, _::binary>>, _} when d1 in ?0..?9 and next_count <= count ->
:list
{<<d1, d2, ?., ?\s, _::binary>>, _}
when d1 in ?0..?9 and d2 in ?0..?9 and next_count <= count ->
{<<d1, d2, ?., ?\s, _::binary>>, _} when d1 in ?0..?9 and d2 in ?0..?9 and next_count <= count ->
:list
{"", [" " <> _ | _]} ->
:next
{"", _} ->
:done
_ ->
:next
end
@@ -257,7 +197,7 @@ defmodule IO.ANSI.Docs do
defp write_text(text, indent, options) do
case Enum.reverse(text) do
[:no_wrap | rest] -> write_text(rest, indent, options, true)
[:no_wrap|rest] -> write_text(rest, indent, options, true)
rest -> write_text(rest, indent, options, false)
end
end
@@ -271,7 +211,7 @@ defmodule IO.ANSI.Docs do
|> Enum.join(" ")
|> handle_links
|> handle_inline(options)
|> String.split(@spaces)
|> String.split(~r{\s})
|> write_with_wrap(options[:width] - byte_size(indent), indent, no_wrap)
unless no_wrap, do: newline_after_block()
@@ -289,7 +229,7 @@ defmodule IO.ANSI.Docs do
end
defp process_code([" " <> line | rest], code, indent, options) do
process_code(rest, [line | code], indent, options)
process_code(rest, [line|code], indent, options)
end
defp process_code(rest, code, indent, options) do
@@ -310,13 +250,13 @@ defmodule IO.ANSI.Docs do
if line === delimiter do
process_code(rest, code, indent, options)
else
process_fenced_code(rest, [line | code], indent, options, delimiter)
process_fenced_code(rest, [line|code], indent, options, delimiter)
end
end
defp write_code(code, indent, options) do
write(:doc_code, "#{indent} #{Enum.join(Enum.reverse(code), "\n#{indent} ")}", options)
newline_after_block()
write(:doc_code, "#{indent}┃ #{Enum.join(Enum.reverse(code), "\n#{indent}┃ ")}", options)
newline_after_block
end
## Tables
@@ -324,44 +264,38 @@ defmodule IO.ANSI.Docs do
defp process_table(lines, indent, options) do
{table, rest} = Enum.split_while(lines, &table_line?/1)
table_lines(table, options)
newline_after_block()
newline_after_block
process(rest, [], indent, options)
end
defp table_lines(lines, options) do
lines = Enum.map(lines, &split_into_columns(&1, options))
count = Enum.map(lines, &length/1) |> Enum.max()
count = Enum.map(lines, &length/1) |> Enum.max
lines = Enum.map(lines, &pad_to_number_of_columns(&1, count))
widths =
for line <- lines do
if table_header?(line) do
for _ <- line, do: 0
else
for {_col, length} <- line, do: length
end
end
widths = for line <- lines, do:
(for {_col, length} <- line, do: length)
col_widths = Enum.reduce(widths,
List.duplicate(0, count),
&max_column_widths/2)
col_widths = Enum.reduce(widths, List.duplicate(0, count), &max_column_widths/2)
render_table(lines, col_widths, options)
end
defp split_into_columns(line, options) do
line
|> String.trim("|")
|> String.trim()
|> String.split(" | ")
|> String.strip(?|)
|> String.strip()
|> String.split(~r/\s\|\s/)
|> Enum.map(&render_column(&1, options))
end
defp render_column(col, options) do
col =
col
|> String.replace("\\\|", "|")
|> String.trim()
|> handle_links
|> handle_inline(options)
col = col
|> String.replace(~r/\\ \|/x, "|")
|> handle_links
|> handle_inline(options)
{col, length_without_escape(col, 0)}
end
@@ -374,10 +308,7 @@ defmodule IO.ANSI.Docs do
# If second line is heading separator, use the heading style on the first
defp render_table([first, second | rest], widths, options) do
combined = Enum.zip(first, widths)
if table_header?(second) do
alignments = Enum.map(second, &column_alignment/1)
options = Keyword.put_new(options, :alignments, alignments)
draw_table_row(combined, options, :heading)
render_table(rest, widths, options)
else
@@ -392,65 +323,31 @@ defmodule IO.ANSI.Docs do
render_table(rest, widths, options)
end
defp render_table([], _, _), do: nil
defp render_table([], _, _),
do: nil
defp column_alignment({line, _}) do
cond do
String.starts_with?(line, ":") and String.ends_with?(line, ":") -> :center
String.ends_with?(line, ":") -> :right
true -> :left
end
end
defp table_header?(line) do
Enum.all?(line, fn {col, _} -> table_header_column?(col) end)
end
defp table_header_column?(":" <> rest), do: table_header_contents?(rest)
defp table_header_column?(col), do: table_header_contents?(col)
defp table_header_contents?("-" <> rest), do: table_header_contents?(rest)
defp table_header_contents?(":"), do: true
defp table_header_contents?(""), do: true
defp table_header_contents?(_), do: false
defp table_header?(row), do:
Enum.all?(row, fn {col, _} -> col =~ ~r/^:?-+:?$/ end)
defp draw_table_row(cols_and_widths, options, heading \\ false) do
default_alignments = List.duplicate(:left, length(cols_and_widths))
alignments = Keyword.get(options, :alignments, default_alignments)
columns =
cols_and_widths
|> Enum.zip(alignments)
|> Enum.map_join(" | ", &generate_table_cell/1)
Enum.map_join(cols_and_widths, " | ", fn {{col, length}, width} ->
col <> String.duplicate(" ", width - length)
end)
if heading do
write(:doc_table_heading, columns, options)
else
IO.puts(columns)
IO.puts columns
end
end
defp generate_table_cell({{{col, length}, width}, :center}) do
ansi_diff = byte_size(col) - length
width = width + ansi_diff
col
|> String.pad_leading(div(width, 2) - div(length, 2) + length)
|> String.pad_trailing(width + 1 - rem(width, 2))
end
defp generate_table_cell({{{col, length}, width}, :right}) do
ansi_diff = byte_size(col) - length
String.pad_leading(col, width + ansi_diff)
end
defp generate_table_cell({{{col, length}, width}, :left}) do
ansi_diff = byte_size(col) - length
String.pad_trailing(col, width + ansi_diff)
end
defp table_line?(line) do
line =~ " | "
Regex.match?(~r'''
( ^ \s{0,3} \| (?: [^|]+ \|)+ \s* $ )
|
(\s \| \s)
'''x, line)
end
## Helpers
@@ -463,11 +360,13 @@ defmodule IO.ANSI.Docs do
defp link_label?(""), do: false
defp link_label?(<<_>> <> rest), do: link_label?(rest)
defp strip_spaces(" " <> line, acc, max) when acc < max, do: strip_spaces(line, acc + 1, max)
defp strip_spaces(rest, acc, _max), do: {rest, acc}
defp strip_spaces(" " <> line, acc, max) when acc < max,
do: strip_spaces(line, acc + 1, max)
defp strip_spaces(rest, acc, _max),
do: {rest, acc}
defp write(style, string, options) do
IO.puts([color(style, options), string, IO.ANSI.reset()])
IO.puts [color(style, options), string, IO.ANSI.reset]
end
defp write_with_wrap([], _available, _indent, _first) do
@@ -476,17 +375,17 @@ defmodule IO.ANSI.Docs do
defp write_with_wrap(words, available, indent, first) do
{words, rest} = take_words(words, available, [])
IO.puts(if(first, do: "", else: indent) <> Enum.join(words, " "))
IO.puts (if first, do: "", else: indent) <> Enum.join(words, " ")
write_with_wrap(rest, available, indent, false)
end
defp take_words([word | words], available, acc) do
defp take_words([word|words], available, acc) do
available = available - length_without_escape(word, 0)
cond do
# It fits, take one for space and continue decreasing
available > 0 ->
take_words(words, available - 1, [word | acc])
take_words(words, available - 1, [word|acc])
# No space but we got no words
acc == [] ->
@@ -494,7 +393,7 @@ defmodule IO.ANSI.Docs do
# Otherwise
true ->
{Enum.reverse(acc), [word | words]}
{Enum.reverse(acc), [word|words]}
end
end
@@ -524,20 +423,19 @@ defmodule IO.ANSI.Docs do
end
defp escape_underlines_in_link(text) do
# Regular expression adapted from https://tools.ietf.org/html/rfc3986#appendix-B
Regex.replace(~r{[a-z][a-z0-9\+\-\.]*://\S*}i, text, &String.replace(&1, "_", "\\_"))
Regex.replace(~r{https?\S*}, text, &String.replace(&1, "_", "\\_"))
end
defp remove_square_brackets_in_link(text) do
Regex.replace(~r{\[([^\]]*?)\]\((.*?)\)}, text, "\\1 (\\2)")
Regex.replace(~r{\[(.*?)\]\((.*?)\)}, text, "\\1 (\\2)")
end
# We have four entries: **, *, _ and `.
#
# The first three behave the same while the last one is simpler
# when it comes to delimiters as it ignores spaces and escape
# characters. But, since the first has two characters, we need to
# handle 3 cases:
# when it comes to delimiters. But, since the first has two
# characters, we need to handle 3 cases:
#
# 1. **
# 2. _ and *
@@ -548,8 +446,7 @@ defmodule IO.ANSI.Docs do
# Characters that can mark the beginning or the end of a word.
# Only support the most common ones at this moment.
@delimiters [?\s, ?', ?", ?!, ?@, ?#, ?$, ?%, ?^, ?&] ++
[?-, ?+, ?(, ?), ?[, ?], ?{, ?}, ?<, ?>, ?.]
@delimiters [?\s, ?', ?", ?!, ?@, ?#, ?$, ?%, ?^, ?&, ?-, ?+, ?(, ?), ?[, ?], ?{, ?}, ?<, ?>, ?.]
# Inline start
@@ -568,89 +465,88 @@ defmodule IO.ANSI.Docs do
# Inline delimiters
defp handle_inline(<<delimiter, ?*, ?*, rest::binary>>, nil, buffer, acc, options)
when rest != "" and delimiter in @delimiters do
handle_inline(rest, ?d, ["**"], [delimiter, Enum.reverse(buffer) | acc], options)
when rest != "" and delimiter in @delimiters do
handle_inline(rest, ?d, ["**"], [delimiter, Enum.reverse(buffer)|acc], options)
end
defp handle_inline(<<delimiter, mark, rest::binary>>, nil, buffer, acc, options)
when rest != "" and delimiter in @delimiters and mark in @single do
handle_inline(rest, mark, [<<mark>>], [delimiter, Enum.reverse(buffer) | acc], options)
when rest != "" and delimiter in @delimiters and mark in @single do
handle_inline(rest, mark, [<<mark>>], [delimiter, Enum.reverse(buffer)|acc], options)
end
defp handle_inline(<<?`, rest::binary>>, nil, buffer, acc, options)
when rest != "" do
handle_inline(rest, ?`, ["`"], [Enum.reverse(buffer) | acc], options)
when rest != "" do
handle_inline(rest, ?`, ["`"], [Enum.reverse(buffer)|acc], options)
end
# Clauses for handling escape
defp handle_inline(<<?\\, ?\\, ?*, ?*, rest::binary>>, nil, buffer, acc, options)
when rest != "" do
handle_inline(rest, ?d, ["**"], [?\\, Enum.reverse(buffer) | acc], options)
when rest != "" do
handle_inline(rest, ?d, ["**"], [?\\, Enum.reverse(buffer)|acc], options)
end
defp handle_inline(<<?\\, ?\\, mark, rest::binary>>, nil, buffer, acc, options)
when rest != "" and mark in @single do
handle_inline(rest, mark, [<<mark>>], [?\\, Enum.reverse(buffer) | acc], options)
when rest != "" and mark in @single do
handle_inline(rest, mark, [<<mark>>], [?\\, Enum.reverse(buffer)|acc], options)
end
defp handle_inline(<<?\\, ?\\, rest::binary>>, limit, buffer, acc, options) do
handle_inline(rest, limit, [?\\ | buffer], acc, options)
handle_inline(rest, limit, [?\\|buffer], acc, options)
end
# An escape is not valid inside `
defp handle_inline(<<?\\, mark, rest::binary>>, limit, buffer, acc, options) when limit != ?` do
handle_inline(rest, limit, [mark | buffer], acc, options)
defp handle_inline(<<?\\, mark, rest::binary>>, limit, buffer, acc, options)
when not(mark == limit and mark == ?`) do
handle_inline(rest, limit, [mark|buffer], acc, options)
end
# Inline end
defp handle_inline(<<?*, ?*, delimiter, rest::binary>>, ?d, buffer, acc, options)
when delimiter in @delimiters do
inline_buffer = inline_buffer(buffer, options)
handle_inline(<<delimiter, rest::binary>>, nil, [], [inline_buffer | acc], options)
when delimiter in @delimiters do
handle_inline(<<delimiter, rest::binary>>, nil, [], [inline_buffer(buffer, options)|acc], options)
end
defp handle_inline(<<mark, delimiter, rest::binary>>, mark, buffer, acc, options)
when delimiter in @delimiters and mark in @single do
inline_buffer = inline_buffer(buffer, options)
handle_inline(<<delimiter, rest::binary>>, nil, [], [inline_buffer | acc], options)
when delimiter in @delimiters and mark in @single do
handle_inline(<<delimiter, rest::binary>>, nil, [], [inline_buffer(buffer, options)|acc], options)
end
defp handle_inline(<<?*, ?*, rest::binary>>, ?d, buffer, acc, options)
when rest == "" do
handle_inline(<<>>, nil, [], [inline_buffer(buffer, options) | acc], options)
when rest == "" do
handle_inline(<<>>, nil, [], [inline_buffer(buffer, options)|acc], options)
end
defp handle_inline(<<mark, rest::binary>>, mark, buffer, acc, options)
when rest == "" and mark in @single do
handle_inline(<<>>, nil, [], [inline_buffer(buffer, options) | acc], options)
when rest == "" and mark in @single do
handle_inline(<<>>, nil, [], [inline_buffer(buffer, options)|acc], options)
end
defp handle_inline(<<?`, rest::binary>>, ?`, buffer, acc, options) do
handle_inline(rest, nil, [], [inline_buffer(buffer, options) | acc], options)
handle_inline(rest, nil, [], [inline_buffer(buffer, options)|acc], options)
end
# Catch all
defp handle_inline(<<char, rest::binary>>, mark, buffer, acc, options) do
handle_inline(rest, mark, [char | buffer], acc, options)
handle_inline(rest, mark, [char|buffer], acc, options)
end
defp handle_inline(<<>>, _mark, buffer, acc, _options) do
IO.iodata_to_binary(Enum.reverse([Enum.reverse(buffer) | acc]))
IO.iodata_to_binary Enum.reverse([Enum.reverse(buffer)|acc])
end
defp inline_buffer(buffer, options) do
[h | t] = Enum.reverse([IO.ANSI.reset() | buffer])
[color_for(h, options) | t]
[h|t] = Enum.reverse([IO.ANSI.reset|buffer])
[color_for(h, options)|t]
end
defp color_for(mark, colors) do
case mark do
"`" -> color(:doc_inline_code, colors)
"_" -> color(:doc_underline, colors)
"*" -> color(:doc_bold, colors)
"`" -> color(:doc_inline_code, colors)
"_" -> color(:doc_underline, colors)
"*" -> color(:doc_bold, colors)
"**" -> color(:doc_bold, colors)
end
end
@@ -660,5 +556,5 @@ defmodule IO.ANSI.Docs do
IO.ANSI.format_fragment(color, colors[:enabled])
end
defp newline_after_block, do: IO.puts(IO.ANSI.reset())
defp newline_after_block, do: IO.puts(IO.ANSI.reset)
end
+6 -17
View File
@@ -1,9 +1,8 @@
defmodule IO.StreamError do
defexception [:reason, :message]
@impl true
def exception(opts) do
reason = opts[:reason]
reason = opts[:reason]
formatted = IO.iodata_to_binary(:file.format_error(reason))
%IO.StreamError{message: "error during streaming: #{formatted}", reason: reason}
end
@@ -17,10 +16,7 @@ defmodule IO.Stream do
* `device` - the IO device
* `raw` - a boolean indicating if bin functions should be used
* `line_or_bytes` - if reading should read lines or a given number of bytes
It is worth noting that an IO stream has side effects and every time you go
over the stream you may get different results.
* `line_or_bytes` - if reading should read lines or a given amount of bytes
"""
@@ -42,12 +38,10 @@ defmodule IO.Stream do
fn
:ok, {:cont, x} ->
case raw do
true -> IO.binwrite(device, x)
true -> IO.binwrite(device, x)
false -> IO.write(device, x)
end
:ok, _ ->
stream
:ok, _ -> stream
end
end
end
@@ -56,11 +50,10 @@ defmodule IO.Stream do
def reduce(%{device: device, raw: raw, line_or_bytes: line_or_bytes}, acc, fun) do
next_fun =
case raw do
true -> &IO.each_binstream(&1, line_or_bytes)
true -> &IO.each_binstream(&1, line_or_bytes)
false -> &IO.each_stream(&1, line_or_bytes)
end
Stream.resource(fn -> device end, next_fun, & &1).(acc, fun)
Stream.resource(fn -> device end, next_fun, &(&1)).(acc, fun)
end
def count(_stream) do
@@ -70,9 +63,5 @@ defmodule IO.Stream do
def member?(_stream, _term) do
{:error, __MODULE__}
end
def slice(_stream) do
{:error, __MODULE__}
end
end
end
+1070 -2401
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+132 -227
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@@ -1,17 +1,9 @@
defmodule Kernel.CLI do
@moduledoc false
@blank_config %{
commands: [],
output: ".",
compile: [],
no_halt: false,
compiler_options: [],
errors: [],
pa: [],
pz: [],
verbose_compile: false
}
@blank_config %{commands: [], output: ".", compile: [],
halt: true, compiler_options: [], errors: [],
pa: [], pz: [], verbose_compile: false}
@doc """
This is the API invoked by Elixir boot process.
@@ -21,18 +13,15 @@ defmodule Kernel.CLI do
{config, argv} = parse_argv(argv)
System.argv(argv)
System.no_halt(config.no_halt)
fun = fn _ ->
run fn _ ->
errors = process_commands(config)
if errors != [] do
Enum.each(errors, &IO.puts(:stderr, &1))
System.halt(1)
end
end
run(fun)
end, config.halt
end
@doc """
@@ -43,10 +32,9 @@ defmodule Kernel.CLI do
This function is used by Elixir's CLI and also
by escripts generated by Elixir.
"""
def run(fun) do
def run(fun, halt \\ true) do
{ok_or_shutdown, status} = exec_fun(fun, {:ok, 0})
if ok_or_shutdown == :shutdown or not System.no_halt() do
if ok_or_shutdown == :shutdown or halt do
{_, status} = at_exit({ok_or_shutdown, status})
# Ensure Logger messages are flushed before halting
@@ -59,51 +47,18 @@ defmodule Kernel.CLI do
end
end
@doc """
Parses the CLI arguments. Made public for testing.
"""
@doc false
def parse_argv(argv) do
parse_argv(argv, @blank_config)
end
@doc """
Process CLI commands. Made public for testing.
"""
@doc false
def process_commands(config) do
results = Enum.map(Enum.reverse(config.commands), &process_command(&1, config))
errors = for {:error, msg} <- results, do: msg
errors = for {:error, msg} <- results, do: msg
Enum.reverse(config.errors, errors)
end
@doc """
Shared helper for error formatting on CLI tools.
"""
def format_error(kind, reason, stacktrace) do
{blamed, stacktrace} = Exception.blame(kind, reason, stacktrace)
iodata =
case blamed do
%FunctionClauseError{} ->
formatted = Exception.format_banner(kind, reason, stacktrace)
padded_blame = pad(FunctionClauseError.blame(blamed, &inspect/1, &blame_match/2))
[formatted, padded_blame]
_ ->
Exception.format_banner(kind, blamed, stacktrace)
end
[iodata, ?\n, Exception.format_stacktrace(prune_stacktrace(stacktrace))]
end
@doc """
Function invoked across nodes for `--rpc-eval`.
"""
def rpc_eval(expr) do
wrapper(fn -> :elixir.eval(to_charlist(expr), [], []) end)
catch
kind, reason -> {kind, reason, __STACKTRACE__}
end
## Helpers
defp at_exit(res) do
@@ -121,23 +76,22 @@ defmodule Kernel.CLI do
fun.(elem(res, 1))
catch
:exit, {:shutdown, int} when is_integer(int) ->
send(parent, {self(), {:shutdown, int}})
send parent, {self, {:shutdown, int}}
exit({:shutdown, int})
:exit, reason
when reason == :normal
when reason == :shutdown
when tuple_size(reason) == 2 and elem(reason, 0) == :shutdown ->
send(parent, {self(), {:shutdown, 0}})
when reason == :normal
when reason == :shutdown
when tuple_size(reason) == 2 and elem(reason, 0) == :shutdown ->
send parent, {self, {:shutdown, 0}}
exit(reason)
kind, reason ->
print_error(kind, reason, __STACKTRACE__)
send(parent, {self(), {:shutdown, 1}})
exit(to_exit(kind, reason, __STACKTRACE__))
stack = System.stacktrace
print_error(kind, reason, stack)
send parent, {self, {:shutdown, 1}}
exit(to_exit(kind, reason, stack))
else
_ ->
send(parent, {self(), res})
send parent, {self, res}
end
end)
@@ -145,7 +99,6 @@ defmodule Kernel.CLI do
{^pid, res} ->
:erlang.demonitor(ref, [:flush])
res
{:DOWN, ^ref, _, _, other} ->
print_error({:EXIT, pid}, other, [])
{:shutdown, 1}
@@ -158,53 +111,32 @@ defmodule Kernel.CLI do
defp shared_option?(list, config, callback) do
case parse_shared(list, config) do
{[h | hs], _} when h == hd(list) ->
{[h|hs], _} when h == hd(list) ->
new_config = %{config | errors: ["#{h} : Unknown option" | config.errors]}
callback.(hs, new_config)
{new_list, new_config} ->
callback.(new_list, new_config)
end
end
## Error handling
defp print_error(kind, reason, stacktrace) do
IO.write(:stderr, format_error(kind, reason, stacktrace))
defp print_error(kind, reason, trace) do
IO.puts :stderr, Exception.format(kind, reason, prune_stacktrace(trace))
end
defp blame_match(%{match?: true, node: node}, _), do: blame_ansi(:normal, "+", node)
defp blame_match(%{match?: false, node: node}, _), do: blame_ansi(:red, "-", node)
defp blame_match(_, string), do: string
@elixir_internals [:elixir, :elixir_exp, :elixir_compiler, :elixir_module, :elixir_clauses,
:elixir_translator, :elixir_expand, :elixir_lexical, :elixir_exp_clauses,
:elixir_def]
defp blame_ansi(color, no_ansi, node) do
if IO.ANSI.enabled?() do
[color | Macro.to_string(node)]
|> IO.ANSI.format(true)
|> IO.iodata_to_binary()
else
no_ansi <> Macro.to_string(node) <> no_ansi
end
end
defp pad(string) do
" " <> String.replace(string, "\n", "\n ")
end
@elixir_internals [:elixir, :elixir_aliases, :elixir_expand, :elixir_compiler, :elixir_module] ++
[:elixir_clauses, :elixir_lexical, :elixir_def, :elixir_map] ++
[:elixir_erl, :elixir_erl_clauses, :elixir_erl_pass, Kernel.ErrorHandler]
defp prune_stacktrace([{mod, _, _, _} | t]) when mod in @elixir_internals do
defp prune_stacktrace([{mod, _, _, _}|t]) when mod in @elixir_internals do
prune_stacktrace(t)
end
defp prune_stacktrace([{__MODULE__, :wrapper, 1, _} | _]) do
defp prune_stacktrace([{__MODULE__, :wrapper, 1, _}|_]) do
[]
end
defp prune_stacktrace([h | t]) do
[h | prune_stacktrace(t)]
defp prune_stacktrace([h|t]) do
[h|prune_stacktrace(t)]
end
defp prune_stacktrace([]) do
@@ -213,103 +145,98 @@ defmodule Kernel.CLI do
# Parse shared options
defp parse_shared([opt | _t], _config) when opt in ["-v", "--version"] do
if function_exported?(IEx, :started?, 0) and IEx.started?() do
IO.puts("IEx " <> System.build_info()[:build])
defp parse_shared([opt|_t], _config) when opt in ["-v", "--version"] do
if function_exported?(IEx, :started?, 0) and IEx.started? do
IO.puts "IEx #{System.version}"
else
IO.puts(:erlang.system_info(:system_version))
IO.puts("Elixir " <> System.build_info()[:build])
IO.puts :erlang.system_info(:system_version)
{:ok, v} = Version.parse(System.version)
case v.pre do
[] -> IO.puts "Elixir #{System.version}"
_ -> IO.puts "Elixir #{System.version} (#{System.build_info().revision})"
end
end
System.halt(0)
System.halt 0
end
defp parse_shared(["-pa", h | t], config) do
defp parse_shared(["-pa", h|t], config) do
paths = expand_code_path(h)
Enum.each(paths, &:code.add_patha/1)
parse_shared(t, %{config | pa: config.pa ++ paths})
parse_shared t, %{config | pa: config.pa ++ paths}
end
defp parse_shared(["-pz", h | t], config) do
defp parse_shared(["-pz", h|t], config) do
paths = expand_code_path(h)
Enum.each(paths, &:code.add_pathz/1)
parse_shared(t, %{config | pz: config.pz ++ paths})
parse_shared t, %{config | pz: config.pz ++ paths}
end
defp parse_shared(["--app", h | t], config) do
parse_shared(t, %{config | commands: [{:app, h} | config.commands]})
defp parse_shared(["--app", h|t], config) do
parse_shared t, %{config | commands: [{:app, h} | config.commands]}
end
defp parse_shared(["--no-halt" | t], config) do
parse_shared(t, %{config | no_halt: true})
defp parse_shared(["--no-halt"|t], config) do
parse_shared t, %{config | halt: false}
end
defp parse_shared(["-e", h | t], config) do
parse_shared(t, %{config | commands: [{:eval, h} | config.commands]})
defp parse_shared(["-e", h|t], config) do
parse_shared t, %{config | commands: [{:eval, h} | config.commands]}
end
defp parse_shared(["--eval", h | t], config) do
parse_shared(t, %{config | commands: [{:eval, h} | config.commands]})
defp parse_shared(["-r", h|t], config) do
parse_shared t, %{config | commands: [{:require, h} | config.commands]}
end
defp parse_shared(["--rpc-eval", node, h | t], config) do
node = append_hostname(node)
parse_shared(t, %{config | commands: [{:rpc_eval, node, h} | config.commands]})
defp parse_shared(["-pr", h|t], config) do
parse_shared t, %{config | commands: [{:parallel_require, h} | config.commands]}
end
defp parse_shared(["-r", h | t], config) do
parse_shared(t, %{config | commands: [{:require, h} | config.commands]})
defp parse_shared([erl, _|t], config) when erl in ["--erl", "--sname", "--name", "--cookie"] do
parse_shared t, config
end
defp parse_shared(["-pr", h | t], config) do
parse_shared(t, %{config | commands: [{:parallel_require, h} | config.commands]})
defp parse_shared([erl|t], config) when erl in ["--detached", "--hidden", "--werl"] do
parse_shared t, config
end
defp parse_shared(list, config) do
{list, config}
end
defp append_hostname(node) do
case :string.find(node, "@") do
:nomatch -> node <> :string.find(Atom.to_string(node()), "@")
_ -> node
end
end
defp expand_code_path(path) do
path = Path.expand(path)
case Path.wildcard(path) do
[] -> [to_charlist(path)]
list -> Enum.map(list, &to_charlist/1)
[] -> [to_char_list(path)]
list -> Enum.map(list, &to_char_list/1)
end
end
# Process init options
defp parse_argv(["--" | t], config) do
defp parse_argv(["--"|t], config) do
{config, t}
end
defp parse_argv(["+elixirc" | t], config) do
parse_compiler(t, config)
defp parse_argv(["+elixirc"|t], config) do
parse_compiler t, config
end
defp parse_argv(["+iex" | t], config) do
parse_iex(t, config)
defp parse_argv(["+iex"|t], config) do
parse_iex t, config
end
defp parse_argv(["-S", h | t], config) do
defp parse_argv(["-S", h|t], config) do
{%{config | commands: [{:script, h} | config.commands]}, t}
end
defp parse_argv([h | t] = list, config) do
defp parse_argv([h|t] = list, config) do
case h do
"-" <> _ ->
shared_option?(list, config, &parse_argv(&1, &2))
shared_option? list, config, &parse_argv(&1, &2)
_ ->
if List.keymember?(config.commands, :eval, 0) do
if Keyword.has_key?(config.commands, :eval) do
{config, list}
else
{%{config | commands: [{:file, h} | config.commands]}, t}
@@ -323,76 +250,74 @@ defmodule Kernel.CLI do
# Parse compiler options
defp parse_compiler(["--" | t], config) do
defp parse_compiler(["--"|t], config) do
{config, t}
end
defp parse_compiler(["-o", h | t], config) do
parse_compiler(t, %{config | output: h})
defp parse_compiler(["-o", h|t], config) do
parse_compiler t, %{config | output: h}
end
defp parse_compiler(["--no-docs" | t], config) do
parse_compiler(t, %{config | compiler_options: [{:docs, false} | config.compiler_options]})
defp parse_compiler(["--no-docs"|t], config) do
parse_compiler t, %{config | compiler_options: [{:docs, false} | config.compiler_options]}
end
defp parse_compiler(["--no-debug-info" | t], config) do
compiler_options = [{:debug_info, false} | config.compiler_options]
parse_compiler(t, %{config | compiler_options: compiler_options})
defp parse_compiler(["--no-debug-info"|t], config) do
parse_compiler t, %{config | compiler_options: [{:debug_info, false} | config.compiler_options]}
end
defp parse_compiler(["--ignore-module-conflict" | t], config) do
compiler_options = [{:ignore_module_conflict, true} | config.compiler_options]
parse_compiler(t, %{config | compiler_options: compiler_options})
defp parse_compiler(["--ignore-module-conflict"|t], config) do
parse_compiler t, %{config | compiler_options: [{:ignore_module_conflict, true} | config.compiler_options]}
end
defp parse_compiler(["--warnings-as-errors" | t], config) do
compiler_options = [{:warnings_as_errors, true} | config.compiler_options]
parse_compiler(t, %{config | compiler_options: compiler_options})
defp parse_compiler(["--warnings-as-errors"|t], config) do
parse_compiler t, %{config | compiler_options: [{:warnings_as_errors, true} | config.compiler_options]}
end
defp parse_compiler(["--verbose" | t], config) do
parse_compiler(t, %{config | verbose_compile: true})
defp parse_compiler(["--verbose"|t], config) do
parse_compiler t, %{config | verbose_compile: true}
end
defp parse_compiler([h | t] = list, config) do
defp parse_compiler([h|t] = list, config) do
case h do
"-" <> _ ->
shared_option?(list, config, &parse_compiler(&1, &2))
shared_option? list, config, &parse_compiler(&1, &2)
_ ->
pattern = if File.dir?(h), do: "#{h}/**/*.ex", else: h
parse_compiler(t, %{config | compile: [pattern | config.compile]})
parse_compiler t, %{config | compile: [pattern | config.compile]}
end
end
defp parse_compiler([], config) do
{%{config | commands: [{:compile, config.compile} | config.commands]}, []}
{%{config | commands: [{:compile, config.compile}|config.commands]}, []}
end
# Parse IEx options
# Parse iex options
defp parse_iex(["--" | t], config) do
defp parse_iex(["--"|t], config) do
{config, t}
end
# This clause is here so that Kernel.CLI does not
# error out with "unknown option"
defp parse_iex(["--dot-iex", _ | t], config) do
parse_iex(t, config)
defp parse_iex(["--dot-iex", _|t], config) do
parse_iex t, config
end
defp parse_iex([opt, _ | t], config) when opt in ["--remsh"] do
parse_iex(t, config)
defp parse_iex([opt, _|t], config) when opt in ["--remsh"] do
parse_iex t, config
end
defp parse_iex(["-S", h | t], config) do
defp parse_iex(["-S", h|t], config) do
{%{config | commands: [{:script, h} | config.commands]}, t}
end
defp parse_iex([h | t] = list, config) do
defp parse_iex([h|t] = list, config) do
case h do
"-" <> _ -> shared_option?(list, config, &parse_iex(&1, &2))
_ -> {%{config | commands: [{:file, h} | config.commands]}, t}
"-" <> _ ->
shared_option? list, config, &parse_iex(&1, &2)
_ ->
{%{config | commands: [{:file, h} | config.commands]}, t}
end
end
@@ -403,32 +328,22 @@ defmodule Kernel.CLI do
# Process commands
defp process_command({:cookie, h}, _config) do
if Node.alive?() do
wrapper(fn -> Node.set_cookie(String.to_atom(h)) end)
if Node.alive? do
wrapper fn -> Node.set_cookie(String.to_atom(h)) end
else
{:error, "--cookie : Cannot set cookie if the node is not alive (set --name or --sname)"}
end
end
defp process_command({:eval, expr}, _config) when is_binary(expr) do
wrapper(fn -> Code.eval_string(expr, []) end)
end
defp process_command({:rpc_eval, node, expr}, _config) when is_binary(expr) do
case :rpc.call(String.to_atom(node), __MODULE__, :rpc_eval, [expr]) do
:ok -> :ok
{:badrpc, {:EXIT, exit}} -> Process.exit(self(), exit)
{:badrpc, reason} -> {:error, "--rpc-eval : RPC failed with reason #{inspect(reason)}"}
{kind, error, stack} -> :erlang.raise(kind, error, stack)
end
wrapper fn -> Code.eval_string(expr, []) end
end
defp process_command({:app, app}, _config) when is_binary(app) do
case Application.ensure_all_started(String.to_atom(app)) do
{:error, {app, reason}} ->
msg = "--app : Could not start application #{app}: " <> Application.format_error(reason)
{:error, msg}
{:error, "--app : Could not start application #{app}: " <>
Application.format_error(reason)}
{:ok, _} ->
:ok
end
@@ -436,7 +351,7 @@ defmodule Kernel.CLI do
defp process_command({:script, file}, _config) when is_binary(file) do
if exec = find_elixir_executable(file) do
wrapper(fn -> Code.require_file(exec) end)
wrapper fn -> Code.require_file(exec) end
else
{:error, "-S : Could not find executable #{file}"}
end
@@ -444,7 +359,7 @@ defmodule Kernel.CLI do
defp process_command({:file, file}, _config) when is_binary(file) do
if File.regular?(file) do
wrapper(fn -> Code.require_file(file) end)
wrapper fn -> Code.require_file(file) end
else
{:error, "No file named #{file}"}
end
@@ -454,7 +369,7 @@ defmodule Kernel.CLI do
files = filter_patterns(pattern)
if files != [] do
wrapper(fn -> Enum.map(files, &Code.require_file(&1)) end)
wrapper fn -> Enum.map files, &Code.require_file(&1) end
else
{:error, "-r : No files matched pattern #{pattern}"}
end
@@ -464,12 +379,7 @@ defmodule Kernel.CLI do
files = filter_patterns(pattern)
if files != [] do
wrapper(fn ->
case Kernel.ParallelCompiler.require(files) do
{:ok, _, _} -> :ok
{:error, _, _} -> exit({:shutdown, 1})
end
end)
wrapper fn -> Kernel.ParallelRequire.files(files) end
else
{:error, "-pr : No files matched pattern #{pattern}"}
end
@@ -482,24 +392,12 @@ defmodule Kernel.CLI do
case filter_multiple_patterns(patterns) do
{:ok, []} ->
{:error, "No files matched provided patterns"}
{:ok, files} ->
wrapper(fn ->
wrapper fn ->
Code.compiler_options(config.compiler_options)
opts =
if config.verbose_compile do
[each_long_compilation: &IO.puts("Compiling #{&1} (it's taking more than 15s)")]
else
[]
end
case Kernel.ParallelCompiler.compile_to_path(files, config.output, opts) do
{:ok, _, _} -> :ok
{:error, _, _} -> exit({:shutdown, 1})
end
end)
Kernel.ParallelCompiler.files_to_path(files, config.output,
each_file: fn file -> if config.verbose_compile do IO.puts "Compiled #{file}" end end)
end
{:missing, missing} ->
{:error, "No files matched pattern(s) #{Enum.join(missing, ",")}"}
end
@@ -507,23 +405,31 @@ defmodule Kernel.CLI do
defp filter_patterns(pattern) do
pattern
|> Path.wildcard()
|> :lists.usort()
|> Path.wildcard
|> :lists.usort
|> Enum.filter(&File.regular?/1)
end
defp filter_multiple_patterns(patterns) do
{files, missing} =
Enum.reduce(patterns, {[], []}, fn pattern, {files, missing} ->
case filter_patterns(pattern) do
[] -> {files, [pattern | missing]}
match -> {match ++ files, missing}
end
end)
matched_files = Enum.map patterns, fn(pattern) ->
case filter_patterns(pattern) do
[] -> {:missing, pattern}
files -> {:ok, files}
end
end
case missing do
[] -> {:ok, :lists.usort(files)}
_ -> {:missing, :lists.usort(missing)}
files = Enum.filter_map matched_files,
fn(match) -> elem(match, 0) == :ok end,
&elem(&1, 1)
missing_patterns = Enum.filter_map matched_files,
fn(match) -> elem(match, 0) == :missing end,
&elem(&1, 1)
if missing_patterns == [] do
{:ok, :lists.usort(Enum.concat(files))}
else
{:missing, :lists.usort(missing_patterns)}
end
end
@@ -541,7 +447,6 @@ defmodule Kernel.CLI do
{:win32, _} ->
base = Path.rootname(exec)
if File.regular?(base), do: base, else: exec
_ ->
exec
end
+22 -25
View File
@@ -3,41 +3,38 @@
defmodule Kernel.ErrorHandler do
@moduledoc false
@spec undefined_function(module, atom, list) :: term
def undefined_function(module, fun, args) do
ensure_loaded(module) or ensure_compiled(module, :module, :raise)
ensure_loaded(module)
:error_handler.undefined_function(module, fun, args)
end
@spec undefined_lambda(module, fun, list) :: term
def undefined_lambda(module, fun, args) do
ensure_loaded(module) or ensure_compiled(module, :module, :raise)
ensure_loaded(module)
:error_handler.undefined_lambda(module, fun, args)
end
@spec ensure_loaded(module) :: boolean
def ensure_loaded(module) do
case :code.ensure_loaded(module) do
{:module, _} -> true
{:error, _} -> false
end
def release() do
# On release, no longer allow elixir_ensure_compiled
# directives and revert to the original error handler.
# Note we should not delete the elixir_compiler_pid though,
# as we still want to send notifications to the compiler.
:erlang.erase(:elixir_ensure_compiled)
:erlang.process_flag(:error_handler, :error_handler)
:ok
end
@spec ensure_compiled(module, atom, atom) :: :found | :not_found | :deadlock
# Never wait on nil because it should never be defined.
def ensure_compiled(nil, _kind, _deadlock) do
:not_found
end
def ensure_compiled(module, kind, deadlock) do
parent = :erlang.get(:elixir_compiler_pid)
ref = :erlang.make_ref()
modules = :elixir_module.compiler_modules()
send(parent, {:waiting, kind, self(), ref, module, modules, deadlock})
:erlang.garbage_collect(self())
receive do
{^ref, value} -> value
defp ensure_loaded(module) do
case Code.ensure_loaded(module) do
{:module, _} -> :ok
{:error, _} ->
parent = :erlang.get(:elixir_compiler_pid)
ref = :erlang.make_ref
send parent, {:waiting, :module, self(), ref, module}
:erlang.garbage_collect(self)
receive do
{^ref, :ready} -> :ok
{^ref, :release} -> release()
end
end
end
end
+83 -196
View File
@@ -1,98 +1,85 @@
# This is an Elixir module responsible for tracking references
# to modules, remote dispatches, and the usage of
# aliases/imports/requires in the Elixir scope.
# This is an Elixir module responsible for tracking
# the usage of aliases, imports and requires in the Elixir scope.
#
# The implementation simply stores dispatch information in an
# ETS table and then consults this table once compilation is done.
#
# Note that since this is required for bootstrap, we can't use
# any of the `GenServer.Behaviour` conveniences.
defmodule Kernel.LexicalTracker do
@moduledoc false
@timeout 30000
@timeout 30_000
@behaviour :gen_server
@doc """
Returns all remotes referenced in this lexical scope.
Returns all remotes linked to in this lexical scope.
"""
def remote_references(pid) do
:gen_server.call(pid, :remote_references, @timeout)
def remotes(arg) do
:gen_server.call(to_pid(arg), :ets, @timeout)
|> :ets.match({{:mode, :'$1'}, :'$2'})
|> partition([], [])
end
defp partition([[remote, :compile]|t], compile, runtime),
do: partition(t, [remote|compile], runtime)
defp partition([[remote, :runtime]|t], compile, runtime),
do: partition(t, compile, [remote|runtime])
defp partition([], compile, runtime),
do: {compile, runtime}
@doc """
Returns all remote dispatches in this lexical scope.
Gets the destination the lexical scope is meant to
compile to.
"""
def remote_dispatches(pid) do
:gen_server.call(pid, :remote_dispatches, @timeout)
def dest(arg) do
:gen_server.call(to_pid(arg), :dest, @timeout)
end
defp to_pid(pid) when is_pid(pid), do: pid
defp to_pid(mod) when is_atom(mod) do
table = :elixir_module.data_table(mod)
[{_, val}] = :ets.lookup(table, {:elixir, :lexical_tracker})
val
end
# Internal API
# Starts the tracker and returns its PID.
# Starts the tracker and returns its pid.
@doc false
def start_link() do
:gen_server.start_link(__MODULE__, :ok, [])
def start_link(dest) do
:gen_server.start_link(__MODULE__, dest, [])
end
@doc false
def stop(pid) do
:gen_server.call(pid, :stop)
:gen_server.cast(pid, :stop)
end
@doc false
def add_import(pid, module, fas, line, warn) when is_atom(module) do
:gen_server.cast(pid, {:add_import, module, fas, line, warn})
def add_import(pid, module, line, warn) do
:gen_server.cast(pid, {:add_import, module, line, warn})
end
@doc false
def add_alias(pid, module, line, warn) when is_atom(module) do
def add_alias(pid, module, line, warn) do
:gen_server.cast(pid, {:add_alias, module, line, warn})
end
@doc false
def remote_reference(pid, module, mode) when is_atom(module) do
:gen_server.cast(pid, {:remote_reference, module, mode})
def remote_dispatch(pid, module, mode) do
:gen_server.cast(pid, {:remote_dispatch, module, mode})
end
@doc false
def remote_dispatch(pid, module, fa, line, mode) when is_atom(module) do
:gen_server.cast(pid, {:remote_dispatch, module, fa, line, mode})
def import_dispatch(pid, module) do
:gen_server.cast(pid, {:import_dispatch, module})
end
@doc false
def remote_struct(pid, module, line) when is_atom(module) do
:gen_server.cast(pid, {:remote_struct, module, line})
end
@doc false
def import_dispatch(pid, module, fa, line, mode) when is_atom(module) do
:gen_server.cast(pid, {:import_dispatch, module, fa, line, mode})
end
@doc false
def alias_dispatch(pid, module) when is_atom(module) do
def alias_dispatch(pid, module) do
:gen_server.cast(pid, {:alias_dispatch, module})
end
@doc false
def set_file(pid, file) do
:gen_server.cast(pid, {:set_file, file})
end
@doc false
def reset_file(pid) do
:gen_server.cast(pid, :reset_file)
end
@doc false
def write_cache(pid, value) do
key = :erlang.unique_integer()
:gen_server.cast(pid, {:write_cache, key, value})
key
end
@doc false
def read_cache(pid, key) do
:gen_server.call(pid, {:read_cache, key}, @timeout)
end
@doc false
def collect_unused_imports(pid) do
unused(pid, :import)
@@ -104,115 +91,61 @@ defmodule Kernel.LexicalTracker do
end
defp unused(pid, tag) do
:gen_server.call(pid, {:unused, tag}, @timeout)
:gen_server.call(pid, :ets, @timeout)
|> :ets.select([{{{tag, :"$1"}, :"$2"}, [is_integer: :"$2"], [{{:"$1", :"$2"}}]}])
|> Enum.sort
end
# Callbacks
def init(:ok) do
state = %{
directives: %{},
references: %{},
compile: %{},
runtime: %{},
structs: %{},
cache: %{},
file: nil
}
{:ok, state}
def init(dest) do
{:ok, {:ets.new(__MODULE__, [:protected]), dest}}
end
@doc false
def handle_call({:unused, tag}, _from, state) do
directives =
for {{^tag, module_or_mfa}, marker} <- state.directives, is_integer(marker) do
{module_or_mfa, marker}
end
{:reply, Enum.sort(directives), state}
def handle_call(:ets, _from, {d, dest}) do
{:reply, d, {d, dest}}
end
def handle_call(:remote_references, _from, state) do
{compile, runtime} = partition(:maps.to_list(state.references), [], [])
{:reply, {compile, :maps.keys(state.structs), runtime}, state}
def handle_call(:dest, _from, {d, dest}) do
{:reply, dest, {d, dest}}
end
def handle_call(:remote_dispatches, _from, state) do
{:reply, {state.compile, state.runtime}, state}
def handle_cast({:remote_dispatch, module, mode}, {d, dest}) do
add_compile(d, module, mode)
{:noreply, {d, dest}}
end
def handle_call({:read_cache, key}, _from, %{cache: cache} = state) do
{:reply, :maps.get(key, cache), state}
def handle_cast({:import_dispatch, module}, {d, dest}) do
add_dispatch(d, module, :import)
# Always compile time because we depend
# on the module at compile time
add_compile(d, module, :compile)
{:noreply, {d, dest}}
end
def handle_call(:stop, _from, state) do
{:stop, :normal, :ok, state}
def handle_cast({:alias_dispatch, module}, {d, dest}) do
add_dispatch(d, module, :alias)
{:noreply, {d, dest}}
end
def handle_cast({:write_cache, key, value}, %{cache: cache} = state) do
{:noreply, %{state | cache: :maps.put(key, value, cache)}}
def handle_cast({:add_import, module, line, warn}, {d, dest}) do
add_directive(d, module, line, warn, :import)
{:noreply, {d, dest}}
end
def handle_cast({:remote_reference, module, mode}, state) do
{:noreply, %{state | references: add_reference(state.references, module, mode)}}
def handle_cast({:add_alias, module, line, warn}, {d, dest}) do
add_directive(d, module, line, warn, :alias)
{:noreply, {d, dest}}
end
def handle_cast({:remote_struct, module, line}, state) do
state = add_remote_dispatch(state, module, {:__struct__, 0}, line, :compile)
structs = :maps.put(module, true, state.structs)
{:noreply, %{state | structs: structs}}
end
def handle_cast({:remote_dispatch, module, fa, line, mode}, state) do
references = add_reference(state.references, module, mode)
state = add_remote_dispatch(state, module, fa, line, mode)
{:noreply, %{state | references: references}}
end
def handle_cast({:import_dispatch, module, {function, arity} = fa, line, mode}, state) do
state =
state
|> add_import_dispatch(module, function, arity)
|> add_remote_dispatch(module, fa, line, mode)
{:noreply, state}
end
def handle_cast({:alias_dispatch, module}, state) do
{:noreply, %{state | directives: add_dispatch(state.directives, module, :alias)}}
end
def handle_cast({:set_file, file}, state) do
{:noreply, %{state | file: file}}
end
def handle_cast(:reset_file, state) do
{:noreply, %{state | file: nil}}
end
def handle_cast({:add_import, module, fas, line, warn}, state) do
directives =
state.directives
|> Enum.reject(&match?({{:import, {^module, _, _}}, _}, &1))
|> :maps.from_list()
|> add_directive(module, line, warn, :import)
directives =
Enum.reduce(fas, directives, fn {function, arity}, directives ->
add_directive(directives, {module, function, arity}, line, warn, :import)
end)
{:noreply, %{state | directives: directives}}
end
def handle_cast({:add_alias, module, line, warn}, state) do
{:noreply, %{state | directives: add_directive(state.directives, module, line, warn, :alias)}}
def handle_cast(:stop, {d, dest}) do
{:stop, :normal, {d, dest}}
end
@doc false
def handle_info(_msg, state) do
{:noreply, state}
def handle_info(_msg, {d, dest}) do
{:noreply, {d, dest}}
end
@doc false
@@ -225,67 +158,21 @@ defmodule Kernel.LexicalTracker do
{:ok, state}
end
defp partition([{remote, :compile} | t], compile, runtime),
do: partition(t, [remote | compile], runtime)
defp partition([{remote, :runtime} | t], compile, runtime),
do: partition(t, compile, [remote | runtime])
defp partition([], compile, runtime), do: {compile, runtime}
# Callbacks helpers
defp add_reference(references, module, :compile) when is_atom(module),
do: :maps.put(module, :compile, references)
defp add_reference(references, module, :runtime) when is_atom(module) do
case :maps.find(module, references) do
{:ok, _} -> references
:error -> :maps.put(module, :runtime, references)
end
end
defp add_remote_dispatch(state, module, fa, line, mode) when is_atom(module) do
location = location(state.file, line)
map_update(mode, %{module => %{fa => [location]}}, state, fn mode_dispatches ->
map_update(module, %{fa => [location]}, mode_dispatches, fn module_dispatches ->
map_update(fa, [location], module_dispatches, &[location | List.delete(&1, location)])
end)
end)
end
defp location(nil, line), do: line
defp location(file, line), do: {file, line}
defp add_import_dispatch(state, module, function, arity) do
directives =
add_dispatch(state.directives, module, :import)
|> add_dispatch({module, function, arity}, :import)
# Always compile time because we depend
# on the module at compile time
references = add_reference(state.references, module, :compile)
%{state | directives: directives, references: references}
end
# In the map we keep imports and aliases.
# In the table we keep imports and aliases.
# If the value is false, it was not imported/aliased
# If the value is a line, it was imported/aliased and has a pending warning
# If the value is true, it was imported/aliased and used
defp add_directive(directives, module_or_mfa, line, warn, tag) do
defp add_dispatch(d, module, tag) do
:ets.insert(d, {{tag, module}, true})
end
defp add_compile(d, module, :runtime), do: :ets.insert_new(d, {{:mode, module}, :runtime})
defp add_compile(d, module, :compile), do: :ets.insert(d, {{:mode, module}, :compile})
defp add_directive(d, module, line, warn, tag) do
marker = if warn, do: line, else: true
:maps.put({tag, module_or_mfa}, marker, directives)
end
defp add_dispatch(directives, module_or_mfa, tag) do
:maps.put({tag, module_or_mfa}, true, directives)
end
defp map_update(key, initial, map, fun) do
case :maps.find(key, map) do
{:ok, val} -> :maps.put(key, fun.(val), map)
:error -> :maps.put(key, initial, map)
end
:ets.insert(d, {{tag, module}, marker})
end
end
+197 -482
View File
@@ -1,41 +1,8 @@
defmodule Kernel.ParallelCompiler do
@moduledoc """
A module responsible for compiling and requiring files in parallel.
A module responsible for compiling files in parallel.
"""
@doc """
Starts a task for parallel compilation.
If you have a file that needs to compile other modules in parallel,
the spawned processes need to be aware of the compiler environment.
This function allows a developer to create a task that is aware of
those environments.
See `Task.async/1` for more information. The task spawned must be
always awaited on by calling `Task.await/1`
"""
@doc since: "1.6.0"
def async(fun) when is_function(fun) do
if parent = :erlang.get(:elixir_compiler_pid) do
file = :erlang.get(:elixir_compiler_file)
dest = :erlang.get(:elixir_compiler_dest)
{:error_handler, error_handler} = :erlang.process_info(self(), :error_handler)
Task.async(fn ->
send(parent, {:async, self()})
:erlang.put(:elixir_compiler_pid, parent)
:erlang.put(:elixir_compiler_file, file)
dest != :undefined and :erlang.put(:elixir_compiler_dest, dest)
:erlang.process_flag(:error_handler, error_handler)
fun.()
end)
else
raise ArgumentError,
"cannot spawn parallel compiler task because " <>
"the current file is not being compiled/required"
end
end
@doc """
Compiles the given files.
@@ -44,506 +11,254 @@ defmodule Kernel.ParallelCompiler do
the current file stops being compiled until the dependency is
resolved.
It returns `{:ok, modules, warnings}` or `{:error, errors, warnings}`.
If there is an error during compilation or if `warnings_as_errors`
is set to `true` and there is a warning, this function will fail
with an exception.
Both errors and warnings are a list of three-element tuples containing
the file, line and the formatted error/warning.
## Options
This function accepts the following options:
* `:each_file` - for each file compiled, invokes the callback passing the
file
* `:each_long_compilation` - for each file that takes more than a given
timeout (see the `:long_compilation_threshold` option) to compile, invoke
this callback passing the file as its argument
* `:each_module` - for each module compiled, invokes the callback passing
the file, module and the module bytecode
* `:each_cycle` - after the given files are compiled, invokes this function
that return a list with potentially more files to compile
* `:long_compilation_threshold` - the timeout (in seconds) after the
`:each_long_compilation` callback is invoked; defaults to `15`
* `:dest` - the destination directory for the BEAM files. When using `compile/2`,
this information is only used to properly annotate the BEAM files before
* `:dest` - the destination directory for the beam files. When using `files/2`,
this information is only used to properly annotate the beam files before
they are loaded into memory. If you want a file to actually be written to
`dest`, use `compile_to_path/3` instead.
`dest`, use `files_to_path/3` instead.
Returns the modules generated by each compiled file.
"""
@doc since: "1.6.0"
def compile(files, options \\ []) when is_list(options) do
spawn_workers(files, :compile, options)
end
def files(files, options \\ [])
@doc since: "1.6.0"
def compile_to_path(files, path, options \\ []) when is_binary(path) and is_list(options) do
spawn_workers(files, {:compile, path}, options)
def files(files, options) when is_list(options) do
spawn_compilers(files, nil, options)
end
@doc """
Requires the given files in parallel.
Opposite to compile, dependencies are not attempted to be
automatically solved between files.
It returns `{:ok, modules, warnings}` or `{:error, errors, warnings}`.
Both errors and warnings are a list of three-element tuples containing
the file, line and the formatted error/warning.
## Options
* `:each_file` - for each file compiled, invokes the callback passing the
file
* `:each_module` - for each module compiled, invokes the callback passing
the file, module and the module bytecode
Compiles the given files to the given path.
Read `files/2` for more information.
"""
@doc since: "1.6.0"
def require(files, options \\ []) when is_list(options) do
spawn_workers(files, :require, options)
def files_to_path(files, path, options \\ [])
def files_to_path(files, path, options) when is_binary(path) and is_list(options) do
spawn_compilers(files, path, options)
end
@doc false
@deprecated "Use Kernel.ParallelCompiler.compile/2 instead"
def files(files, options \\ []) when is_list(options) do
case spawn_workers(files, :compile, options) do
{:ok, modules, _} -> modules
{:error, _, _} -> exit({:shutdown, 1})
end
end
@doc false
@deprecated "Use Kernel.ParallelCompiler.compile_to_path/2 instead"
def files_to_path(files, path, options \\ []) when is_binary(path) and is_list(options) do
case spawn_workers(files, {:compile, path}, options) do
{:ok, modules, _} -> modules
{:error, _, _} -> exit({:shutdown, 1})
end
end
defp spawn_workers(files, output, options) do
{:module, _} = :code.ensure_loaded(Kernel.ErrorHandler)
defp spawn_compilers(files, path, options) do
true = Code.ensure_loaded?(Kernel.ErrorHandler)
compiler_pid = self()
:elixir_code_server.cast({:reset_warnings, compiler_pid})
schedulers = max(:erlang.system_info(:schedulers_online), 2)
result =
spawn_workers(files, 0, [], [], %{}, [], %{
dest: Keyword.get(options, :dest),
each_cycle: Keyword.get(options, :each_cycle, fn -> [] end),
each_file: Keyword.get(options, :each_file, fn _, _ -> :ok end) |> each_file(),
each_long_compilation: Keyword.get(options, :each_long_compilation, fn _file -> :ok end),
each_module: Keyword.get(options, :each_module, fn _file, _module, _binary -> :ok end),
output: output,
long_compilation_threshold: Keyword.get(options, :long_compilation_threshold, 15),
schedulers: schedulers
})
result = spawn_compilers(files, files, path, options, [], [], schedulers, [])
# In case --warning-as-errors is enabled and there was a warning,
# compilation status will be set to error.
compilation_status = :elixir_code_server.call({:compilation_status, compiler_pid})
case {result, compilation_status} do
{{:ok, _, warnings}, :error} ->
message = "Compilation failed due to warnings while using the --warnings-as-errors option"
IO.puts(:stderr, message)
{:error, warnings, []}
{{:error, errors, warnings}, :error} ->
{:error, errors ++ warnings, []}
_ ->
case :elixir_code_server.call({:compilation_status, compiler_pid}) do
:ok ->
result
:error ->
IO.puts :stderr, "Compilation failed due to warnings while using the --warnings-as-errors option"
exit({:shutdown, 1})
end
end
defp each_file(fun) when is_function(fun, 1), do: fn file, _ -> fun.(file) end
defp each_file(fun) when is_function(fun, 2), do: fun
defp each_file(file, lexical, parent) do
ref = Process.monitor(parent)
send(parent, {:file_ok, self(), ref, file, lexical})
receive do
^ref -> :ok
{:DOWN, ^ref, _, _, _} -> :ok
end
end
# We already have n=schedulers currently running, don't spawn new ones
defp spawn_workers(
queue,
spawned,
waiting,
files,
result,
warnings,
%{schedulers: schedulers} = state
)
when spawned - length(waiting) >= schedulers do
wait_for_messages(queue, spawned, waiting, files, result, warnings, state)
# We already have 4 currently running, don't spawn new ones
defp spawn_compilers(entries, original, output, options, waiting, queued, schedulers, result) when
length(queued) - length(waiting) >= schedulers do
wait_for_messages(entries, original, output, options, waiting, queued, schedulers, result)
end
# Release waiting processes
defp spawn_workers([{ref, found} | t], spawned, waiting, files, result, warnings, state) do
waiting =
case List.keytake(waiting, ref, 2) do
{{_kind, pid, ^ref, _on, _defining, _deadlock}, waiting} ->
send(pid, {ref, found})
waiting
nil ->
# In case the waiting process died (for example, it was an async process),
# it will no longer be on the list. So we need to take it into account here.
waiting
end
spawn_workers(t, spawned, waiting, files, result, warnings, state)
defp spawn_compilers([h|t], original, output, options, waiting, queued, schedulers, result) when is_pid(h) do
{_kind, ^h, ref, _module} = List.keyfind(waiting, h, 1)
send h, {ref, :ready}
waiting = List.keydelete(waiting, h, 1)
spawn_compilers(t, original, output, options, waiting, queued, schedulers, result)
end
defp spawn_workers([file | queue], spawned, waiting, files, result, warnings, state) do
%{output: output, long_compilation_threshold: threshold, dest: dest} = state
# Spawn a compiler for each file in the list until we reach the limit
defp spawn_compilers([h|t], original, output, options, waiting, queued, schedulers, result) do
parent = self()
file = Path.expand(file)
{pid, ref} =
:erlang.spawn_monitor(fn ->
:erlang.spawn_monitor fn ->
# Notify Code.ensure_compiled/2 that we should
# attempt to compile the module by doing a dispatch.
:erlang.put(:elixir_ensure_compiled, true)
# Set the elixir_compiler_pid used by our custom Kernel.ErrorHandler.
:erlang.put(:elixir_compiler_pid, parent)
:erlang.put(:elixir_compiler_file, file)
:erlang.process_flag(:error_handler, Kernel.ErrorHandler)
try do
case output do
{:compile, path} ->
:erlang.process_flag(:error_handler, Kernel.ErrorHandler)
:erlang.put(:elixir_compiler_dest, path)
:elixir_compiler.file_to_path(file, path, &each_file(&1, &2, parent))
:compile ->
:erlang.process_flag(:error_handler, Kernel.ErrorHandler)
:erlang.put(:elixir_compiler_dest, dest)
:elixir_compiler.file(file, &each_file(&1, &2, parent))
:require ->
case :elixir_code_server.call({:acquire, file}) do
:required ->
send(parent, {:file_cancel, self()})
:proceed ->
:elixir_compiler.file(file, &each_file(&1, &2, parent))
:elixir_code_server.cast({:required, file})
end
exit(try do
_ = if output do
:elixir_compiler.file_to_path(h, output)
else
:elixir_compiler.file(h, Keyword.get(options, :dest))
end
{:shutdown, h}
catch
kind, reason ->
send(parent, {:file_error, self(), file, {kind, reason, __STACKTRACE__}})
end
exit(:shutdown)
end)
timer_ref = Process.send_after(self(), {:timed_out, pid}, threshold * 1000)
files = [{pid, ref, file, timer_ref} | files]
spawn_workers(queue, spawned + 1, waiting, files, result, warnings, state)
end
# No more queue, nothing waiting, this cycle is done
defp spawn_workers([], 0, [], [], result, warnings, state) do
case state.each_cycle.() do
[] ->
modules = for {{:module, mod}, _} <- result, do: mod
warnings = Enum.reverse(warnings)
{:ok, modules, warnings}
more ->
spawn_workers(more, 0, [], [], result, warnings, state)
end
end
# files x, waiting for x: POSSIBLE ERROR! Release processes so we get the failures
# Single entry, just release it.
defp spawn_workers(
[],
1,
[{_, pid, ref, _, _, _}] = waiting,
[{pid, _, _, _}] = files,
result,
warnings,
state
) do
spawn_workers([{ref, :not_found}], 1, waiting, files, result, warnings, state)
end
# Multiple entries, try to release modules.
defp spawn_workers([], spawned, waiting, files, result, warnings, state)
when length(waiting) == spawned do
# There is potentially a deadlock. We will release modules with
# the following order:
#
# 1. Code.ensure_compiled?/1 checks (deadlock = soft)
# 2. Struct checks (deadlock = hard)
# 3. Modules without a known definition
# 4. Code invocation (deadlock = raise)
#
# In theory there is no difference between hard and raise, the
# difference is where the raise is happening, inside the compiler
# or in the caller.
cond do
deadlocked = deadlocked(waiting, :soft) || deadlocked(waiting, :hard) ->
spawn_workers(deadlocked, spawned, waiting, files, result, warnings, state)
without_definition = without_definition(waiting, files) ->
spawn_workers(without_definition, spawned, waiting, files, result, warnings, state)
true ->
errors = handle_deadlock(waiting, files)
{:error, errors, warnings}
end
end
# No more queue, but spawned and length(waiting) do not match
defp spawn_workers([], spawned, waiting, files, result, warnings, state) do
wait_for_messages([], spawned, waiting, files, result, warnings, state)
end
# The goal of this function is to find leaves in the dependency graph,
# i.e. to find code that depends on code that we know is not being defined.
defp without_definition(waiting, files) do
nillify_empty(
for {pid, _, _, _} <- files,
{_, ^pid, ref, on, _, _} = List.keyfind(waiting, pid, 1),
not Enum.any?(waiting, fn {_, _, _, _, defining, _} -> on in defining end),
do: {ref, :not_found}
)
end
defp deadlocked(waiting, type) do
nillify_empty(for {_, _, ref, _, _, ^type} <- waiting, do: {ref, :not_found})
end
defp nillify_empty([]), do: nil
defp nillify_empty([_ | _] = list), do: list
# Wait for messages from child processes
defp wait_for_messages(queue, spawned, waiting, files, result, warnings, state) do
%{output: output} = state
receive do
{:async, process} ->
Process.monitor(process)
wait_for_messages(queue, spawned + 1, waiting, files, result, warnings, state)
{:available, kind, module} ->
available =
for {^kind, _, ref, ^module, _defining, _deadlock} <- waiting,
do: {ref, :found}
result = Map.put(result, {kind, module}, true)
spawn_workers(available ++ queue, spawned, waiting, files, result, warnings, state)
{:module_available, child, ref, file, module, binary} ->
state.each_module.(file, module, binary)
# Release the module loader which is waiting for an ack
send(child, {ref, :ack})
available =
for {:module, _, ref, ^module, _defining, _deadlock} <- waiting,
do: {ref, :found}
cancel_waiting_timer(files, child)
result = Map.put(result, {:module, module}, true)
spawn_workers(available ++ queue, spawned, waiting, files, result, warnings, state)
# If we are simply requiring files, we do not add to waiting.
{:waiting, _kind, child, ref, _on, _defining, _deadlock} when output == :require ->
send(child, {ref, :not_found})
spawn_workers(queue, spawned, waiting, files, result, warnings, state)
{:waiting, kind, child, ref, on, defining, deadlock?} ->
# If we already got what we were waiting for, do not put it on waiting.
# Alternatively, we're waiting on ourselves,
# send :found so that we can crash with a better error.
waiting =
if Map.has_key?(result, {kind, on}) or on in defining do
send(child, {ref, :found})
waiting
else
[{kind, child, ref, on, defining, deadlock?} | waiting]
end
spawn_workers(queue, spawned, waiting, files, result, warnings, state)
{:timed_out, child} ->
case List.keyfind(files, child, 0) do
{^child, _, file, _} -> state.each_long_compilation.(file)
_ -> :ok
end
spawn_workers(queue, spawned, waiting, files, result, warnings, state)
{:warning, file, line, message} ->
file = file && Path.absname(file)
message = :unicode.characters_to_binary(message)
warning = {file, line, message}
wait_for_messages(queue, spawned, waiting, files, result, [warning | warnings], state)
{:file_ok, child_pid, ref, file, lexical} ->
state.each_file.(file, lexical)
send(child_pid, ref)
cancel_waiting_timer(files, child_pid)
discard_down(child_pid)
new_files = List.keydelete(files, child_pid, 0)
# Sometimes we may have spurious entries in the waiting list
# because someone invoked try/rescue UndefinedFunctionError
new_waiting = List.keydelete(waiting, child_pid, 1)
spawn_workers(queue, spawned - 1, new_waiting, new_files, result, warnings, state)
{:file_cancel, child_pid} ->
cancel_waiting_timer(files, child_pid)
discard_down(child_pid)
new_files = List.keydelete(files, child_pid, 0)
spawn_workers(queue, spawned - 1, waiting, new_files, result, warnings, state)
{:file_error, child_pid, file, {kind, reason, stack}} ->
print_error(file, kind, reason, stack)
cancel_waiting_timer(files, child_pid)
discard_down(child_pid)
files |> List.keydelete(child_pid, 0) |> terminate()
{:error, [to_error(file, kind, reason, stack)], warnings}
{:DOWN, ref, :process, pid, reason} ->
waiting = List.keydelete(waiting, pid, 1)
case handle_down(files, ref, reason) do
:ok -> wait_for_messages(queue, spawned - 1, waiting, files, result, warnings, state)
{:error, errors} -> {:error, errors, warnings}
end
end
end
defp discard_down(pid) do
receive do
{:DOWN, _, :process, ^pid, _} -> :ok
end
end
defp handle_down(_files, _ref, :normal) do
:ok
end
defp handle_down(files, ref, reason) do
case List.keyfind(files, ref, 1) do
{child_pid, ^ref, file, _timer_ref} ->
print_error(file, :exit, reason, [])
files
|> List.keydelete(child_pid, 0)
|> terminate()
{:error, [to_error(file, :exit, reason, [])]}
_ ->
:ok
end
end
defp handle_deadlock(waiting, files) do
deadlock =
for {pid, _, file, _} <- files do
{:current_stacktrace, stacktrace} = Process.info(pid, :current_stacktrace)
Process.exit(pid, :kill)
{kind, ^pid, _, on, _, _} = List.keyfind(waiting, pid, 1)
description = "deadlocked waiting on #{kind} #{inspect(on)}"
error = CompileError.exception(description: description, file: nil, line: nil)
print_error(file, :error, error, stacktrace)
{Path.relative_to_cwd(file), on, description}
{:failure, kind, reason, System.stacktrace}
end)
end
IO.puts("""
Compilation failed because of a deadlock between files.
The following files depended on the following modules:
""")
max =
deadlock
|> Enum.map(&(&1 |> elem(0) |> String.length()))
|> Enum.max()
for {file, mod, _} <- deadlock do
IO.puts([" ", String.pad_leading(file, max), " => " | inspect(mod)])
end
IO.puts(
"\nEnsure there are no compile-time dependencies between those files " <>
"and that the modules they reference exist and are correctly named\n"
)
for {file, _, description} <- deadlock, do: {Path.absname(file), nil, description}
spawn_compilers(t, original, output, options, waiting,
[{pid, ref, h}|queued], schedulers, result)
end
defp terminate(files) do
for {pid, _, _, _} <- files, do: Process.exit(pid, :kill)
for {pid, _, _, _} <- files, do: discard_down(pid)
# No more files, nothing waiting, queue is empty, we are done
defp spawn_compilers([], _original, _output, _options, [], [], _schedulers, result) do
for {:module, mod} <- result, do: mod
end
# Queued x, waiting for x: POSSIBLE ERROR! Release processes so we get the failures
defp spawn_compilers([], original, output, options, waiting, queued, schedulers, result) when length(waiting) == length(queued) do
Enum.each queued, fn {child, _, _} ->
{_kind, ^child, ref, _module} = List.keyfind(waiting, child, 1)
send child, {ref, :release}
end
wait_for_messages([], original, output, options, waiting, queued, schedulers, result)
end
# No more files, but queue and waiting are not full or do not match
defp spawn_compilers([], original, output, options, waiting, queued, schedulers, result) do
wait_for_messages([], original, output, options, waiting, queued, schedulers, result)
end
# Wait for messages from child processes
defp wait_for_messages(entries, original, output, options, waiting, queued, schedulers, result) do
receive do
{:struct_available, module} ->
available = for {:struct, pid, _, waiting_module} <- waiting,
module == waiting_module,
not pid in entries,
do: pid
spawn_compilers(available ++ entries, original, output, options,
waiting, queued, schedulers, [{:struct, module}|result])
{:module_available, child, ref, file, module, binary} ->
if callback = Keyword.get(options, :each_module) do
callback.(file, module, binary)
end
# Release the module loader which is waiting for an ack
send child, {ref, :ack}
available = for {_kind, pid, _, waiting_module} <- waiting,
module == waiting_module,
not pid in entries,
do: pid
spawn_compilers(available ++ entries, original, output, options,
waiting, queued, schedulers, [{:module, module}|result])
{:waiting, kind, child, ref, on} ->
defined = fn {k, m} -> on == m and k in [kind, :module] end
# Oops, we already got it, do not put it on waiting.
if :lists.any(defined, result) do
send child, {ref, :ready}
else
waiting = [{kind, child, ref, on}|waiting]
end
spawn_compilers(entries, original, output, options, waiting, queued, schedulers, result)
{:DOWN, _down_ref, :process, down_pid, {:shutdown, file}} ->
if callback = Keyword.get(options, :each_file) do
callback.(file)
end
# Sometimes we may have spurious entries in the waiting
# list because someone invoked try/rescue UndefinedFunctionError
new_entries = List.delete(entries, down_pid)
new_queued = List.keydelete(queued, down_pid, 0)
new_waiting = List.keydelete(waiting, down_pid, 1)
spawn_compilers(new_entries, original, output, options, new_waiting, new_queued, schedulers, result)
{:DOWN, down_ref, :process, _down_pid, reason} ->
handle_failure(down_ref, reason, entries, waiting, queued)
wait_for_messages(entries, original, output, options, waiting, queued, schedulers, result)
end
end
defp handle_failure(ref, reason, entries, waiting, queued) do
if file = find_failure(ref, queued) do
print_failure(file, reason)
if all_missing?(entries, waiting, queued) do
collect_failures(queued, length(queued) - 1)
end
Enum.each queued, fn {child, _, _} ->
Process.exit(child, :kill)
end
exit({:shutdown, 1})
end
end
defp find_failure(ref, queued) do
case List.keyfind(queued, ref, 1) do
{_child, ^ref, file} -> file
_ -> nil
end
end
defp print_failure(_file, {:shutdown, _}) do
:ok
end
defp print_error(file, kind, reason, stack) do
IO.write([
"\n== Compilation error in file #{Path.relative_to_cwd(file)} ==\n",
Kernel.CLI.format_error(kind, reason, stack)
])
defp print_failure(file, {:failure, kind, reason, stacktrace}) do
IO.puts "\n== Compilation error on file #{Path.relative_to_cwd(file)} =="
IO.puts Exception.format(kind, reason, prune_stacktrace(stacktrace))
end
defp cancel_waiting_timer(files, child_pid) do
case List.keyfind(files, child_pid, 0) do
{^child_pid, _ref, _file, timer_ref} ->
Process.cancel_timer(timer_ref)
# Let's flush the message in case it arrived before we canceled the timeout.
receive do
{:timed_out, ^child_pid} -> :ok
after
0 -> :ok
defp print_failure(file, reason) do
IO.puts "\n== Compilation error on file #{Path.relative_to_cwd(file)} =="
IO.puts Exception.format(:exit, reason, [])
end
@elixir_internals [:elixir, :elixir_exp, :elixir_compiler, :elixir_module, :elixir_clauses,
:elixir_translator, :elixir_expand, :elixir_lexical, :elixir_exp_clauses,
:elixir_def]
defp prune_stacktrace([{mod, _, _, _}|t]) when mod in @elixir_internals do
prune_stacktrace(t)
end
defp prune_stacktrace([h|t]) do
[h|prune_stacktrace(t)]
end
defp prune_stacktrace([]) do
[]
end
defp all_missing?(entries, waiting, queued) do
entries == [] and waiting != [] and
length(waiting) == length(queued)
end
defp collect_failures(_queued, 0), do: :ok
defp collect_failures(queued, remaining) do
receive do
{:DOWN, down_ref, :process, _down_pid, reason} ->
if file = find_failure(down_ref, queued) do
print_failure(file, reason)
collect_failures(queued, remaining - 1)
else
collect_failures(queued, remaining)
end
nil ->
:ok
after
# Give up if no failure appears in 5 seconds
5000 -> :ok
end
end
defp to_error(file, kind, reason, stack) do
line = get_line(file, reason, stack)
file = Path.absname(file)
message = :unicode.characters_to_binary(Kernel.CLI.format_error(kind, reason, stack))
{file, line, message}
end
defp get_line(_file, %{line: line}, _stack) when is_integer(line) and line > 0 do
line
end
defp get_line(file, :undef, [{_, _, _, []}, {_, _, _, info} | _]) do
if Keyword.get(info, :file) == to_charlist(Path.relative_to_cwd(file)) do
Keyword.get(info, :line)
end
end
defp get_line(file, _reason, [{_, _, _, info} | _]) do
if Keyword.get(info, :file) == to_charlist(Path.relative_to_cwd(file)) do
Keyword.get(info, :line)
end
end
defp get_line(_, _, _) do
nil
end
end
+77 -9
View File
@@ -1,17 +1,85 @@
defmodule Kernel.ParallelRequire do
@moduledoc false
@moduledoc """
A module responsible for requiring files in parallel.
"""
@deprecated "Use Kernel.ParallelCompiler.require/2 instead"
def files(files, callbacks \\ [])
@doc """
Requires the given files.
def files(files, callback) when is_function(callback, 1) do
files(files, each_file: callback)
A callback that is invoked every time a file is required
can be optionally given as argument.
Returns the modules generated by each required file.
"""
def files(files, callback \\ fn x -> x end) do
compiler_pid = self()
:elixir_code_server.cast({:reset_warnings, compiler_pid})
schedulers = max(:erlang.system_info(:schedulers_online), 2)
result = spawn_requires(files, [], callback, schedulers, [])
# In case --warning-as-errors is enabled and there was a warning,
# compilation status will be set to error.
case :elixir_code_server.call({:compilation_status, compiler_pid}) do
:ok ->
result
:error ->
IO.puts :stderr, "Compilation failed due to warnings while using the --warnings-as-errors option"
exit({:shutdown, 1})
end
end
def files(files, options) when is_list(options) do
case Kernel.ParallelCompiler.require(files, options) do
{:ok, modules, _} -> modules
{:error, _, _} -> exit({:shutdown, 1})
defp spawn_requires([], [], _callback, _schedulers, result), do: result
defp spawn_requires([], waiting, callback, schedulers, result) do
wait_for_messages([], waiting, callback, schedulers, result)
end
defp spawn_requires(files, waiting, callback, schedulers, result) when length(waiting) >= schedulers do
wait_for_messages(files, waiting, callback, schedulers, result)
end
defp spawn_requires([h|t], waiting, callback, schedulers, result) do
parent = self()
{pid, ref} = :erlang.spawn_monitor fn ->
:erlang.put(:elixir_compiler_pid, parent)
exit(try do
new = Code.require_file(h) || []
{:required, Enum.map(new, &elem(&1, 0)), h}
catch
kind, reason ->
{:failure, kind, reason, System.stacktrace}
end)
end
spawn_requires(t, [{pid, ref}|waiting], callback, schedulers, result)
end
defp wait_for_messages(files, waiting, callback, schedulers, result) do
receive do
{:DOWN, ref, :process, pid, status} ->
tuple = {pid, ref}
if tuple in waiting do
case status do
{:required, mods, file} ->
callback.(file)
result = mods ++ result
waiting = List.delete(waiting, tuple)
{:failure, kind, reason, stacktrace} ->
:erlang.raise(kind, reason, stacktrace)
other ->
:erlang.raise(:exit, other, [])
end
end
spawn_requires(files, waiting, callback, schedulers, result)
{:module_available, child, ref, _, _, _} ->
send(child, {ref, :ack})
spawn_requires(files, waiting, callback, schedulers, result)
{:struct_available, _} ->
spawn_requires(files, waiting, callback, schedulers, result)
{:waiting, :struct, child, ref, _} ->
send(child, {ref, :release})
spawn_requires(files, waiting, callback, schedulers, result)
end
end
end
File diff suppressed because it is too large Load Diff
File diff suppressed because it is too large Load Diff
+29 -237
View File
@@ -3,30 +3,18 @@ import Kernel, except: [destructure: 2, defdelegate: 2, defstruct: 2]
defmodule Kernel.Utils do
@moduledoc false
@doc """
Callback for destructure.
"""
def destructure(list, count)
when is_list(list) and is_integer(count) and count >= 0,
do: destructure_list(list, count)
def destructure(nil, count)
when is_integer(count) and count >= 0,
do: destructure_nil(count)
def destructure(list, count) when is_list(list), do: destructure_list(list, count)
def destructure(nil, count), do: destructure_nil(count)
defp destructure_list(_, 0), do: []
defp destructure_list([], count), do: destructure_nil(count)
defp destructure_list([h | t], count), do: [h | destructure_list(t, count - 1)]
defp destructure_list([h|t], count), do: [h|destructure_list(t, count - 1)]
defp destructure_nil(0), do: []
defp destructure_nil(count), do: [nil | destructure_nil(count - 1)]
defp destructure_nil(count), do: [nil|destructure_nil(count - 1)]
@doc """
Callback for defdelegate.
"""
def defdelegate(fun, opts) when is_list(opts) do
# TODO: Remove on v2.0
append_first? = Keyword.get(opts, :append_first, false)
def defdelegate(fun, opts, env) do
append_first = Keyword.get(opts, :append_first, false)
{name, args} =
case Macro.decompose_call(fun) do
@@ -34,46 +22,37 @@ defmodule Kernel.Utils do
_ -> raise ArgumentError, "invalid syntax in defdelegate #{Macro.to_string(fun)}"
end
as = Keyword.get(opts, :as, name)
as_args = build_as_args(args, append_first?)
:ok = check_defdelegate_args(args, env)
as_args =
case append_first and args != [] do
true -> tl(args) ++ [hd(args)]
false -> args
end
as = Keyword.get(opts, :as, name)
{name, args, as, as_args}
end
defp build_as_args(args, append_first?) do
as_args = :lists.map(&build_as_arg/1, args)
case append_first? do
true -> tl(as_args) ++ [hd(as_args)]
false -> as_args
end
# TODO: Convert this to an error on 1.3
defp check_defdelegate_args([], _env),
do: :ok
defp check_defdelegate_args([{var, _, mod}|rest], env) when is_atom(var) and is_atom(mod),
do: check_defdelegate_args(rest, env)
defp check_defdelegate_args([code|_], env) do
:elixir_errors.warn(env.line, env.file,
"defdelegate/2 will only accept variable names in upcoming versions, " <>
"got: #{Macro.to_string(code)}")
end
defp build_as_arg({:\\, _, [arg, _default_arg]}), do: validate_arg(arg)
defp build_as_arg(arg), do: validate_arg(arg)
defp validate_arg({name, _, mod} = arg) when is_atom(name) and is_atom(mod) do
arg
end
defp validate_arg(ast) do
raise ArgumentError,
"defdelegate/2 only accepts function parameters, got: #{Macro.to_string(ast)}"
end
@doc """
Callback for defstruct.
"""
def defstruct(module, fields) do
case fields do
fs when is_list(fs) ->
:ok
fs when is_list(fs) -> :ok
other ->
raise ArgumentError, "struct fields definition must be list, got: #{inspect(other)}"
raise ArgumentError, "struct fields definition must be list, got: #{inspect other}"
end
mapper = fn
fields = :lists.map(fn
{key, val} when is_atom(key) ->
try do
Macro.escape(val)
@@ -83,199 +62,12 @@ defmodule Kernel.Utils do
else
_ -> {key, val}
end
key when is_atom(key) ->
{key, nil}
other ->
raise ArgumentError, "struct field names must be atoms, got: #{inspect(other)}"
end
raise ArgumentError, "struct field names must be atoms, got: #{inspect other}"
end, fields)
fields = :lists.map(mapper, fields)
enforce_keys = List.wrap(Module.get_attribute(module, :enforce_keys))
foreach = fn
key when is_atom(key) ->
:ok
key ->
raise ArgumentError, "keys given to @enforce_keys must be atoms, got: #{inspect(key)}"
end
:lists.foreach(foreach, enforce_keys)
struct = :maps.put(:__struct__, module, :maps.from_list(fields))
{struct, enforce_keys, Module.get_attribute(module, :derive)}
end
@doc """
Announcing callback for defstruct.
"""
def announce_struct(module) do
case :erlang.get(:elixir_compiler_pid) do
:undefined -> :ok
pid -> send(pid, {:available, :struct, module})
end
end
@doc """
Callback for raise.
"""
def raise(msg) when is_binary(msg) do
RuntimeError.exception(msg)
end
def raise(module) when is_atom(module) do
module.exception([])
end
def raise(%_{__exception__: true} = exception) do
exception
end
def raise(other) do
ArgumentError.exception(
"raise/1 and reraise/2 expect a module name, string or exception " <>
"as the first argument, got: #{inspect(other)}"
)
end
@doc """
Callback for defguard.
Rewrites an expression so it can be used both inside and outside a guard.
Take, for example, the expression:
is_integer(value) and rem(value, 2) == 0
If we wanted to create a macro, `is_even`, from this expression, that could be
used in guards, we'd have to take several things into account.
First, if this expression is being used inside a guard, `value` needs to be
unquoted each place it occurs, since it has not yet been at that point in our
macro.
Secondly, if the expression is being used outside of a guard, we want to unquote
`value`, but only once, and then re-use the unquoted form throughout the expression.
This helper does exactly that: takes the AST for an expression and a list of
variable references it should be aware of, and rewrites it into a new expression
that checks for its presence in a guard, then unquotes the variable references as
appropriate.
The following code
expression = quote do: is_integer(value) and rem(value, 2) == 0
variable_references = [value: Elixir]
Kernel.Utils.defguard(expression, variable_references) |> Macro.to_string() |> IO.puts()
would print a code similar to:
case Macro.Env.in_guard?(__CALLER__) do
true ->
quote do
is_integer(unquote(value)) and rem(unquote(value), 2) == 0
end
false ->
quote do
value = unquote(value)
is_integer(value) and rem(value, 2) == 0
end
end
"""
defmacro defguard(args, expr) do
defguard(args, expr, __CALLER__)
end
@spec defguard([Macro.t()], Macro.t(), Macro.Env.t()) :: Macro.t()
def defguard(args, expr, env) do
{^args, vars} = extract_refs_from_args(args)
env = :elixir_env.with_vars(%{env | context: :guard}, vars)
{expr, _scope} = :elixir_expand.expand(expr, env)
quote do
case Macro.Env.in_guard?(__CALLER__) do
true -> unquote(literal_quote(unquote_every_ref(expr, vars)))
false -> unquote(literal_quote(unquote_refs_once(expr, vars)))
end
end
end
defp extract_refs_from_args(args) do
Macro.postwalk(args, [], fn
{ref, meta, context} = var, acc when is_atom(ref) and is_atom(context) ->
{var, [{ref, var_context(meta, context)} | acc]}
node, acc ->
{node, acc}
end)
end
# Finds every reference to `refs` in `guard` and wraps them in an unquote.
defp unquote_every_ref(guard, refs) do
Macro.postwalk(guard, fn
{ref, meta, context} = var when is_atom(ref) and is_atom(context) ->
case {ref, var_context(meta, context)} in refs do
true -> literal_unquote(var)
false -> var
end
node ->
node
end)
end
# Prefaces `guard` with unquoted versions of `refs`.
defp unquote_refs_once(guard, refs) do
{guard, used_refs} =
Macro.postwalk(guard, %{}, fn
{ref, meta, context} = var, acc when is_atom(ref) and is_atom(context) ->
pair = {ref, var_context(meta, context)}
case pair in refs do
true ->
case acc do
%{^pair => {new_var, _}} ->
{new_var, acc}
%{} ->
generated = String.to_atom("arg" <> Integer.to_string(map_size(acc)))
new_var = Macro.var(generated, Elixir)
{new_var, Map.put(acc, pair, {new_var, var})}
end
false ->
{var, acc}
end
node, acc ->
{node, acc}
end)
all_used = for ref <- :lists.reverse(refs), used = :maps.get(ref, used_refs, nil), do: used
{vars, exprs} = :lists.unzip(all_used)
quote do
{unquote_splicing(vars)} = {unquote_splicing(Enum.map(exprs, &literal_unquote/1))}
unquote(guard)
end
end
defp literal_quote(ast) do
{:quote, [], [[do: ast]]}
end
defp literal_unquote(ast) do
{:unquote, [], List.wrap(ast)}
end
defp var_context(meta, kind) do
case :lists.keyfind(:counter, 1, meta) do
{:counter, counter} -> counter
false -> kind
end
:maps.put(:__struct__, module, :maps.from_list(fields))
end
end
+92 -303
View File
@@ -2,49 +2,12 @@ defmodule Keyword do
@moduledoc """
A set of functions for working with keywords.
A keyword list is a list of two-element tuples where the first
A keyword is a list of 2-element tuples where the first
element of the tuple is an atom and the second element
can be any value.
For example, the following is a keyword list:
[{:exit_on_close, true}, {:active, :once}, {:packet_size, 1024}]
Elixir provides a special and more concise syntax for keyword lists
that looks like this:
[exit_on_close: true, active: :once, packet_size: 1024]
This is also the syntax that Elixir uses to inspect keyword lists:
iex> [{:active, :once}]
[active: :once]
The two syntaxes are completely equivalent. Like atoms, keywords
must be composed of Unicode characters such as letters, numbers,
underscore, and `@`. If the keyword has a character that does not
belong to the category above, such as spaces, you can wrap it in
quotes:
iex> ["exit on close": true]
["exit on close": true]
Wrapping a keyword in quotes does not make it a string. Keywords are
always atoms. If you use quotes when all characters are a valid part
of a keyword without quotes, Elixir will warn.
Note that when keyword lists are passed as the last argument to a function,
if the short-hand syntax is used then the square brackets around the keyword list
can be omitted as well. For example, the following:
String.split("1-0", "-", trim: true, parts: 2)
is equivalent to:
String.split("1-0", "-", [trim: true, parts: 2])
A keyword may have duplicated keys so it is not strictly
a key-value store. However most of the functions in this module
a dictionary. However most of the functions in this module
behave exactly as a dictionary so they work similarly to
the functions you would find in the `Map` module.
@@ -52,10 +15,6 @@ defmodule Keyword do
the given key, regardless if duplicated entries exist.
Similarly, `Keyword.put/3` and `Keyword.delete/3` ensure all
duplicated entries for a given key are removed when invoked.
Note that operations that require keys to be found in the keyword
list (like `Keyword.get/3`) need to traverse the list in order
to find keys, so these operations may be slower than their map
counterparts.
A handful of functions exist to handle duplicated keys, in
particular, `Enum.into/2` allows creating new keywords without
@@ -63,14 +22,10 @@ defmodule Keyword do
a given key and `delete_first/2` deletes just one of the existing
entries.
The functions in `Keyword` do not guarantee any property when
The functions in Keyword do not guarantee any property when
it comes to ordering. However, since a keyword list is simply a
list, all the operations defined in `Enum` and `List` can be
applied too, especially when ordering is required.
Most of the functions in this module work in linear time. This means
that, the time it takes to perform an operation grows at the same
rate as the length of the list.
applied too, specially when ordering is required.
"""
@compile :inline_list_funcs
@@ -88,7 +43,7 @@ defmodule Keyword do
iex> Keyword.keyword?([])
true
iex> Keyword.keyword?(a: 1)
iex> Keyword.keyword?([a: 1])
true
iex> Keyword.keyword?([{Foo, 1}])
true
@@ -104,7 +59,7 @@ defmodule Keyword do
def keyword?(term)
def keyword?([{key, _value} | rest]) when is_atom(key), do: keyword?(rest)
def keyword?([]), do: true
def keyword?([]), do: true
def keyword?(_other), do: false
@doc """
@@ -116,11 +71,11 @@ defmodule Keyword do
[]
"""
@spec new :: []
@spec new :: t
def new, do: []
@doc """
Creates a keyword list from an enumerable.
Creates a keyword from an enumerable.
Duplicated entries are removed, the latest one prevails.
Unlike `Enum.into(enumerable, [])`, `Keyword.new(enumerable)`
@@ -135,13 +90,13 @@ defmodule Keyword do
[a: 3]
"""
@spec new(Enum.t()) :: t
@spec new(Enum.t) :: t
def new(pairs) do
new(pairs, fn pair -> pair end)
end
@doc """
Creates a keyword list from an enumerable via the transformation function.
Creates a keyword from an enumerable via the transformation function.
Duplicated entries are removed, the latest one prevails.
Unlike `Enum.into(enumerable, [], fun)`,
@@ -149,17 +104,16 @@ defmodule Keyword do
## Examples
iex> Keyword.new([:a, :b], fn x -> {x, x} end)
iex> Keyword.new([:a, :b], fn (x) -> {x, x} end)
[a: :a, b: :b]
"""
@spec new(Enum.t(), (term -> {key, value})) :: t
def new(pairs, transform) when is_function(transform, 1) do
@spec new(Enum.t, (term -> {key, value})) :: t
def new(pairs, transform) do
fun = fn el, acc ->
{k, v} = transform.(el)
put_new(acc, k, v)
end
:lists.foldl(fun, [], Enum.reverse(pairs))
end
@@ -191,6 +145,7 @@ defmodule Keyword do
3
"""
@spec get(t, key) :: value
@spec get(t, key, value) :: value
def get(keywords, key, default \\ nil) when is_list(keywords) and is_atom(key) do
case :lists.keyfind(key, 1, keywords) do
@@ -236,14 +191,12 @@ defmodule Keyword do
Gets the value from `key` and updates it, all in one pass.
This `fun` argument receives the value of `key` (or `nil` if `key`
is not present) and must return a two-element tuple: the "get" value
(the retrieved value, which can be operated on before being returned)
and the new value to be stored under `key`. The `fun` may also
return `:pop`, implying the current value shall be removed from the
keyword list and returned.
is not present) and must return a two-elements tuple: the "get" value (the
retrieved value, which can be operated on before being returned) and the new
value to be stored under `key`.
The returned value is a tuple with the "get" value returned by
`fun` and a new keyword list with the updated value under `key`.
The returned value is a tuple with the "get" value returned by `fun` and a new
keyword list with the updated value under `key`.
## Examples
@@ -257,51 +210,30 @@ defmodule Keyword do
...> end)
{nil, [b: "new value!", a: 1]}
iex> Keyword.get_and_update([a: 1], :a, fn _ -> :pop end)
{1, []}
iex> Keyword.get_and_update([a: 1], :b, fn _ -> :pop end)
{nil, [a: 1]}
"""
@spec get_and_update(t, key, (value -> {get, value} | :pop)) :: {get, t} when get: term
@spec get_and_update(t, key, (value -> {get, value})) :: {get, t} when get: term
def get_and_update(keywords, key, fun)
when is_list(keywords) and is_atom(key),
do: get_and_update(keywords, [], key, fun)
when is_list(keywords) and is_atom(key),
do: get_and_update(keywords, [], key, fun)
defp get_and_update([{key, current} | t], acc, key, fun) do
case fun.(current) do
{get, value} ->
{get, :lists.reverse(acc, [{key, value} | t])}
:pop ->
{current, :lists.reverse(acc, t)}
other ->
raise "the given function must return a two-element tuple or :pop, got: #{inspect(other)}"
end
defp get_and_update([{key, value}|t], acc, key, fun) do
{get, new_value} = fun.(value)
{get, :lists.reverse(acc, [{key, new_value}|t])}
end
defp get_and_update([{_, _} = h | t], acc, key, fun), do: get_and_update(t, [h | acc], key, fun)
defp get_and_update([h|t], acc, key, fun),
do: get_and_update(t, [h|acc], key, fun)
defp get_and_update([], acc, key, fun) do
case fun.(nil) do
{get, update} ->
{get, [{key, update} | :lists.reverse(acc)]}
:pop ->
{nil, :lists.reverse(acc)}
other ->
raise "the given function must return a two-element tuple or :pop, got: #{inspect(other)}"
end
{get, update} = fun.(nil)
{get, [{key, update}|:lists.reverse(acc)]}
end
@doc """
Gets the value from `key` and updates it. Raises if there is no `key`.
This `fun` argument receives the value of `key` and must return a
two-element tuple: the "get" value (the retrieved value, which can be
two-elements tuple: the "get" value (the retrieved value, which can be
operated on before being returned) and the new value to be stored under
`key`.
@@ -310,7 +242,7 @@ defmodule Keyword do
## Examples
iex> Keyword.get_and_update!([a: 1], :a, fn current_value ->
iex> Keyword.get_and_update!([a: 1], :a, fn(current_value) ->
...> {current_value, "new value!"}
...> end)
{1, [a: "new value!"]}
@@ -320,32 +252,19 @@ defmodule Keyword do
...> end)
** (KeyError) key :b not found in: [a: 1]
iex> Keyword.get_and_update!([a: 1], :a, fn _ ->
...> :pop
...> end)
{1, []}
"""
@spec get_and_update!(t, key, (value -> {get, value})) :: {get, t} when get: term
@spec get_and_update!(t, key, (value -> {get, value})) :: {get, t} | no_return when get: term
def get_and_update!(keywords, key, fun) do
get_and_update!(keywords, key, fun, [])
end
defp get_and_update!([{key, value} | keywords], key, fun, acc) do
case fun.(value) do
{get, value} ->
{get, :lists.reverse(acc, [{key, value} | delete(keywords, key)])}
:pop ->
{value, :lists.reverse(acc, keywords)}
other ->
raise "the given function must return a two-element tuple or :pop, got: #{inspect(other)}"
end
defp get_and_update!([{key, value}|keywords], key, fun, acc) do
{get, value} = fun.(value)
{get, :lists.reverse(acc, [{key, value}|delete(keywords, key)])}
end
defp get_and_update!([{_, _} = e | keywords], key, fun, acc) do
get_and_update!(keywords, key, fun, [e | acc])
defp get_and_update!([{_, _} = e|keywords], key, fun, acc) do
get_and_update!(keywords, key, fun, [e|acc])
end
defp get_and_update!([], key, _fun, acc) when is_atom(key) do
@@ -386,7 +305,7 @@ defmodule Keyword do
** (KeyError) key :b not found in: [a: 1]
"""
@spec fetch!(t, key) :: value
@spec fetch!(t, key) :: value | no_return
def fetch!(keywords, key) when is_list(keywords) and is_atom(key) do
case :lists.keyfind(key, 1, keywords) do
{^key, value} -> value
@@ -410,10 +329,9 @@ defmodule Keyword do
@spec get_values(t, key) :: [value]
def get_values(keywords, key) when is_list(keywords) and is_atom(key) do
fun = fn
{^key, val} -> {true, val}
{k, v} when k === key -> {true, v}
{_, _} -> false
end
:lists.filtermap(fun, keywords)
end
@@ -424,9 +342,9 @@ defmodule Keyword do
## Examples
iex> Keyword.keys(a: 1, b: 2)
iex> Keyword.keys([a: 1, b: 2])
[:a, :b]
iex> Keyword.keys(a: 1, b: 2, a: 3)
iex> Keyword.keys([a: 1, b: 2, a: 3])
[:a, :b, :a]
"""
@@ -442,9 +360,9 @@ defmodule Keyword do
## Examples
iex> Keyword.values(a: 1, b: 2)
iex> Keyword.values([a: 1, b: 2])
[1, 2]
iex> Keyword.values(a: 1, b: 2, a: 3)
iex> Keyword.values([a: 1, b: 2, a: 3])
[1, 2, 3]
"""
@@ -472,22 +390,7 @@ defmodule Keyword do
"""
@spec delete(t, key, value) :: t
def delete(keywords, key, value) when is_list(keywords) and is_atom(key) do
case :lists.keymember(key, 1, keywords) do
true -> delete_key_value(keywords, key, value)
_ -> keywords
end
end
defp delete_key_value([{key, value} | tail], key, value) do
delete_key_value(tail, key, value)
end
defp delete_key_value([{_, _} = pair | tail], key, value) do
[pair | delete_key_value(tail, key, value)]
end
defp delete_key_value([], _key, _value) do
[]
:lists.filter(fn {k, v} -> k != key or v != value end, keywords)
end
@doc """
@@ -508,24 +411,8 @@ defmodule Keyword do
"""
@spec delete(t, key) :: t
@compile {:inline, delete: 2}
def delete(keywords, key) when is_list(keywords) and is_atom(key) do
case :lists.keymember(key, 1, keywords) do
true -> delete_key(keywords, key)
_ -> keywords
end
end
defp delete_key([{key, _} | tail], key) do
delete_key(tail, key)
end
defp delete_key([{_, _} = pair | tail], key) do
[pair | delete_key(tail, key)]
end
defp delete_key([], _key) do
[]
:lists.filter(fn {k, _} -> k != key end, keywords)
end
@doc """
@@ -543,22 +430,7 @@ defmodule Keyword do
"""
@spec delete_first(t, key) :: t
def delete_first(keywords, key) when is_list(keywords) and is_atom(key) do
case :lists.keymember(key, 1, keywords) do
true -> delete_first_key(keywords, key)
_ -> keywords
end
end
defp delete_first_key([{key, _} | tail], key) do
tail
end
defp delete_first_key([{_, _} = pair | tail], key) do
[pair | delete_first_key(tail, key)]
end
defp delete_first_key([], _key) do
[]
:lists.keydelete(key, 1, keywords)
end
@doc """
@@ -579,7 +451,7 @@ defmodule Keyword do
"""
@spec put(t, key, value) :: t
def put(keywords, key, value) when is_list(keywords) and is_atom(key) do
[{key, value} | delete(keywords, key)]
[{key, value}|delete(keywords, key)]
end
@doc """
@@ -607,7 +479,7 @@ defmodule Keyword do
when is_list(keywords) and is_atom(key) and is_function(fun, 0) do
case :lists.keyfind(key, 1, keywords) do
{^key, _} -> keywords
false -> [{key, fun.()} | keywords]
false -> [{key, fun.()}|keywords]
end
end
@@ -627,40 +499,7 @@ defmodule Keyword do
def put_new(keywords, key, value) when is_list(keywords) and is_atom(key) do
case :lists.keyfind(key, 1, keywords) do
{^key, _} -> keywords
false -> [{key, value} | keywords]
end
end
@doc false
@deprecated "Use Keyword.fetch/2 + Keyword.put/3 instead"
def replace(keywords, key, value) when is_list(keywords) and is_atom(key) do
case :lists.keyfind(key, 1, keywords) do
{^key, _} -> [{key, value} | delete(keywords, key)]
false -> keywords
end
end
@doc """
Alters the value stored under `key` to `value`, but only
if the entry `key` already exists in `keywords`.
If `key` is not present in `keywords`, a `KeyError` exception is raised.
## Examples
iex> Keyword.replace!([a: 1, b: 2, a: 4], :a, 3)
[a: 3, b: 2]
iex> Keyword.replace!([a: 1], :b, 2)
** (KeyError) key :b not found in: [a: 1]
"""
@doc since: "1.5.0"
@spec replace!(t, key, value) :: t
def replace!(keywords, key, value) when is_list(keywords) and is_atom(key) do
case :lists.keyfind(key, 1, keywords) do
{^key, _} -> [{key, value} | delete(keywords, key)]
false -> raise KeyError, key: key, term: keywords
false -> [{key, value}|keywords]
end
end
@@ -701,32 +540,11 @@ defmodule Keyword do
iex> Keyword.merge([a: 1, b: 2], [a: 3, d: 4, a: 5])
[b: 2, a: 3, d: 4, a: 5]
iex> Keyword.merge([a: 1], [2, 3])
** (ArgumentError) expected a keyword list as the second argument, got: [2, 3]
"""
@spec merge(t, t) :: t
def merge(keywords1, keywords2)
def merge(keywords1, []) when is_list(keywords1), do: keywords1
def merge([], keywords2) when is_list(keywords2), do: keywords2
def merge(keywords1, keywords2) when is_list(keywords1) and is_list(keywords2) do
if keyword?(keywords2) do
fun = fn
{key, _value} when is_atom(key) ->
not has_key?(keywords2, key)
_ ->
raise ArgumentError,
"expected a keyword list as the first argument, got: #{inspect(keywords1)}"
end
:lists.filter(fun, keywords1) ++ keywords2
else
raise ArgumentError,
"expected a keyword list as the second argument, got: #{inspect(keywords2)}"
end
fun = fn {k, _v} -> not has_key?(keywords2, k) end
:lists.filter(fun, keywords1) ++ keywords2
end
@doc """
@@ -748,53 +566,35 @@ defmodule Keyword do
[b: 2, a: 4, d: 4]
iex> Keyword.merge([a: 1, b: 2], [a: 3, d: 4, a: 5], fn :a, v1, v2 ->
...> v1 + v2
...> v1 + v2
...> end)
[b: 2, a: 4, d: 4, a: 5]
iex> Keyword.merge([a: 1, b: 2, a: 3], [a: 3, d: 4, a: 5], fn :a, v1, v2 ->
...> v1 + v2
...> v1 + v2
...> end)
[b: 2, a: 4, d: 4, a: 8]
iex> Keyword.merge([a: 1, b: 2], [:a, :b], fn :a, v1, v2 ->
...> v1 + v2
...> end)
** (ArgumentError) expected a keyword list as the second argument, got: [:a, :b]
"""
@spec merge(t, t, (key, value, value -> value)) :: t
def merge(keywords1, keywords2, fun)
when is_list(keywords1) and is_list(keywords2) and is_function(fun, 3) do
if keyword?(keywords1) do
do_merge(keywords2, [], keywords1, keywords1, fun, keywords2)
else
raise ArgumentError,
"expected a keyword list as the first argument, got: #{inspect(keywords1)}"
end
def merge(keywords1, keywords2, fun) when is_list(keywords1) and is_list(keywords2) do
do_merge(keywords2, [], keywords1, keywords1, fun)
end
defp do_merge([{key, value2} | tail], acc, rest, original, fun, keywords2) when is_atom(key) do
case :lists.keyfind(key, 1, original) do
{^key, value1} ->
acc = [{key, fun.(key, value1, value2)} | acc]
original = :lists.keydelete(key, 1, original)
do_merge(tail, acc, delete(rest, key), original, fun, keywords2)
defp do_merge([{k, v2}|t], acc, rest, original, fun) do
case :lists.keyfind(k, 1, original) do
{^k, v1} ->
do_merge(t, [{k, fun.(k, v1, v2)}|acc],
delete(rest, k), :lists.keydelete(k, 1, original), fun)
false ->
do_merge(tail, [{key, value2} | acc], rest, original, fun, keywords2)
do_merge(t, [{k, v2}|acc], rest, original, fun)
end
end
defp do_merge([], acc, rest, _original, _fun, _keywords2) do
defp do_merge([], acc, rest, _original, _fun) do
rest ++ :lists.reverse(acc)
end
defp do_merge(_other, _acc, _rest, _original, _fun, keywords2) do
raise ArgumentError,
"expected a keyword list as the second argument, got: #{inspect(keywords2)}"
end
@doc """
Returns whether a given `key` exists in the given `keywords`.
@@ -830,18 +630,17 @@ defmodule Keyword do
** (KeyError) key :b not found in: [a: 1]
"""
@spec update!(t, key, (value -> value)) :: t
def update!(keywords, key, fun)
when is_list(keywords) and is_atom(key) and is_function(fun, 1) do
@spec update!(t, key, (value -> value)) :: t | no_return
def update!(keywords, key, fun) do
update!(keywords, key, fun, keywords)
end
defp update!([{key, value} | keywords], key, fun, _dict) do
[{key, fun.(value)} | delete(keywords, key)]
defp update!([{key, value}|keywords], key, fun, _dict) do
[{key, fun.(value)}|delete(keywords, key)]
end
defp update!([{_, _} = e | keywords], key, fun, dict) do
[e | update!(keywords, key, fun, dict)]
defp update!([{_, _} = e|keywords], key, fun, dict) do
[e|update!(keywords, key, fun, dict)]
end
defp update!([], key, _fun, dict) when is_atom(key) do
@@ -869,12 +668,12 @@ defmodule Keyword do
@spec update(t, key, value, (value -> value)) :: t
def update(keywords, key, initial, fun)
def update([{key, value} | keywords], key, _initial, fun) do
[{key, fun.(value)} | delete(keywords, key)]
def update([{key, value}|keywords], key, _initial, fun) do
[{key, fun.(value)}|delete(keywords, key)]
end
def update([{_, _} = e | keywords], key, initial, fun) do
[e | update(keywords, key, initial, fun)]
def update([{_, _} = e|keywords], key, initial, fun) do
[e|update(keywords, key, initial, fun)]
end
def update([], key, initial, _fun) when is_atom(key) do
@@ -887,7 +686,7 @@ defmodule Keyword do
Returns a tuple with the new list and the old list with removed keys.
Keys for which there are no entries in the keyword list are ignored.
Keys for which there are no entires in the keyword list are ignored.
Entries with duplicated keys end up in the same keyword list.
@@ -899,12 +698,11 @@ defmodule Keyword do
{[a: 1, c: 3, a: 4], [b: 2]}
"""
@spec split(t, [key]) :: {t, t}
def split(keywords, keys) when is_list(keywords) and is_list(keys) do
def split(keywords, keys) when is_list(keywords) do
fun = fn {k, v}, {take, drop} ->
case k in keys do
true -> {[{k, v} | take], drop}
false -> {take, [{k, v} | drop]}
true -> {[{k, v}|take], drop}
false -> {take, [{k, v}|drop]}
end
end
@@ -927,8 +725,7 @@ defmodule Keyword do
[a: 1, c: 3, a: 5]
"""
@spec take(t, [key]) :: t
def take(keywords, keys) when is_list(keywords) and is_list(keys) do
def take(keywords, keys) when is_list(keywords) do
:lists.filter(fn {k, _} -> k in keys end, keywords)
end
@@ -945,21 +742,15 @@ defmodule Keyword do
[a: 1, c: 3, a: 5]
"""
@spec drop(t, [key]) :: t
def drop(keywords, keys) when is_list(keywords) and is_list(keys) do
:lists.filter(fn {key, _} -> key not in keys end, keywords)
def drop(keywords, keys) when is_list(keywords) do
:lists.filter(fn {k, _} -> not k in keys end, keywords)
end
@doc """
Returns the first value for `key` and removes all associated entries in the keyword list.
Returns and removes all values associated with `key` in the keyword list.
It returns a tuple where the first element is the first value for `key` and the
second element is a keyword list with all entries associated with `key` removed.
If the `key` is not present in the keyword list, `{default, keyword_list}` is
returned.
If you don't want to remove all the entries associated with `key` use `pop_first/3`
instead, that function will remove only the first entry.
All duplicated keys are removed. See `pop_first/3` for
removing only the first entry.
## Examples
@@ -974,11 +765,10 @@ defmodule Keyword do
"""
@spec pop(t, key, value) :: {value, t}
def pop(keywords, key, default \\ nil) when is_list(keywords) and is_atom(key) do
def pop(keywords, key, default \\ nil) when is_list(keywords) do
case fetch(keywords, key) do
{:ok, value} ->
{value, delete(keywords, key)}
:error ->
{default, keywords}
end
@@ -1008,11 +798,10 @@ defmodule Keyword do
"""
@spec pop_lazy(t, key, (() -> value)) :: {value, t}
def pop_lazy(keywords, key, fun)
when is_list(keywords) and is_atom(key) and is_function(fun, 0) do
when is_list(keywords) and is_function(fun, 0) do
case fetch(keywords, key) do
{:ok, value} ->
{value, delete(keywords, key)}
:error ->
{fun.(), keywords}
end
@@ -1025,18 +814,18 @@ defmodule Keyword do
## Examples
iex> Keyword.pop_first([a: 1], :a)
iex> Keyword.pop_first [a: 1], :a
{1, []}
iex> Keyword.pop_first([a: 1], :b)
iex> Keyword.pop_first [a: 1], :b
{nil, [a: 1]}
iex> Keyword.pop_first([a: 1], :b, 3)
iex> Keyword.pop_first [a: 1], :b, 3
{3, [a: 1]}
iex> Keyword.pop_first([a: 1, a: 2], :a)
iex> Keyword.pop_first [a: 1, a: 2], :a
{1, [a: 2]}
"""
@spec pop_first(t, key, value) :: {value, t}
def pop_first(keywords, key, default \\ nil) when is_list(keywords) and is_atom(key) do
def pop_first(keywords, key, default \\ nil) when is_list(keywords) do
case :lists.keytake(key, 1, keywords) do
{:value, {^key, value}, rest} -> {value, rest}
false -> {default, keywords}
@@ -1048,17 +837,17 @@ defmodule Keyword do
## Examples
iex> Keyword.to_list(a: 1)
iex> Keyword.to_list([a: 1])
[a: 1]
"""
@spec to_list(t) :: t
def to_list(keyword) when is_list(keyword) do
keyword
end
# TODO: Deprecate by 1.3
# TODO: Remove by 1.4
@doc false
@deprecated "Use Kernel.length/1 instead"
def size(keyword) do
length(keyword)
end
+147 -647
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+26 -31
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@@ -1,61 +1,56 @@
defprotocol List.Chars do
@moduledoc ~S"""
The `List.Chars` protocol is responsible for
converting a structure to a charlist (only if applicable).
The List.Chars protocol is responsible for
converting a structure to a list (only if applicable).
The only function required to be implemented is
`to_charlist/1` which does the conversion.
`to_char_list` which does the conversion.
The `to_charlist/1` function automatically imported
by `Kernel` invokes this protocol.
The `to_char_list` function automatically imported
by Kernel invokes this protocol.
"""
@doc """
Converts `term` to a charlist.
"""
@spec to_charlist(t) :: charlist
def to_charlist(term)
@doc false
@deprecated "Use List.Chars.to_charlist/1 instead"
Kernel.def to_char_list(term) do
__MODULE__.to_charlist(term)
end
def to_char_list(thing)
end
defimpl List.Chars, for: Atom do
def to_charlist(atom), do: Atom.to_charlist(atom)
def to_char_list(atom), do: Atom.to_char_list(atom)
end
defimpl List.Chars, for: BitString do
@doc """
Returns the given binary `term` converted to a charlist.
Returns the given binary converted to a char list.
"""
def to_charlist(term) when is_binary(term) do
String.to_charlist(term)
def to_char_list(thing) when is_binary(thing) do
String.to_char_list(thing)
end
def to_charlist(term) do
def to_char_list(thing) do
raise Protocol.UndefinedError,
protocol: @protocol,
value: term,
description: "cannot convert a bitstring to a charlist"
protocol: @protocol,
value: thing,
description: "cannot convert a bitstring to a char list"
end
end
defimpl List.Chars, for: List do
# Note that same inlining is used for the rewrite rule.
def to_charlist(list), do: list
def to_char_list(list), do: list
end
defimpl List.Chars, for: Integer do
def to_charlist(term) do
Integer.to_charlist(term)
def to_char_list(thing) do
Integer.to_char_list(thing)
end
end
defimpl List.Chars, for: Float do
def to_charlist(term) do
:io_lib_format.fwrite_g(term)
@digits 20
@limit :math.pow(10, @digits)
def to_char_list(thing) when thing > @limit do
Float.to_char_list(thing, scientific: @digits)
end
def to_char_list(thing) do
Float.to_char_list(thing, compact: true, decimals: @digits)
end
end
+369 -717
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File diff suppressed because it is too large Load Diff
+35 -106
View File
@@ -3,8 +3,8 @@ defmodule Macro.Env do
A struct that holds compile time environment information.
The current environment can be accessed at any time as
`__ENV__/0`. Inside macros, the caller environment can be
accessed as `__CALLER__/0`.
`__ENV__`. Inside macros, the caller environment can be
accessed as `__CALLER__`.
An instance of `Macro.Env` must not be modified by hand. If you need to
create a custom environment to pass to `Code.eval_quoted/3`, use the
@@ -28,77 +28,56 @@ defmodule Macro.Env do
element is the function name and the second its arity; returns
`nil` if not inside a function
* `context` - the context of the environment; it can be `nil`
(default context), `:guard` (inside a guard) or `:match` (inside a match)
* `aliases` - a list of two-element tuples, where the first
element is the aliased name and the second one the actual name
(default context), inside a guard or inside a match
* `aliases` - a list of two-item tuples, where the first
item is the aliased name and the second the actual name
* `requires` - the list of required modules
* `functions` - a list of functions imported from each module
* `macros` - a list of macros imported from each module
* `macro_aliases` - a list of aliases defined inside the current macro
* `context_modules` - a list of modules defined in the current context
* `vars` - a list keeping all defined variables as `{var, context}`
* `export_vars` - a list keeping all variables to be exported in a
construct (may be `nil`)
* `lexical_tracker` - PID of the lexical tracker which is responsible for
keeping user info
The following fields pertain to variable handling and must not be accessed or
relied on. To get a list of all variables, see `vars/1`:
* `current_vars`
* `unused_vars`
* `prematch_vars`
* `contextual_vars`
The following fields are deprecated and must not be accessed or relied on:
* `vars` - a list keeping all defined variables as `{var, context}`
* `local` - the module to expand local functions to
"""
@type name_arity :: {atom, arity}
@type file :: binary
@type line :: non_neg_integer
@type aliases :: [{module, module}]
@type macro_aliases :: [{module, {term, module}}]
@type macro_aliases :: [{module, {integer, module}}]
@type context :: :match | :guard | nil
@type requires :: [module]
@type functions :: [{module, [name_arity]}]
@type macros :: [{module, [name_arity]}]
@type context_modules :: [module]
@type lexical_tracker :: pid | nil
@type variable :: {atom, atom | term}
@type vars :: [{atom, atom | non_neg_integer}]
@type export_vars :: vars | nil
@type lexical_tracker :: pid
@type local :: atom | nil
@typep vars :: [variable]
@typep var_type :: :term
@typep var_version :: non_neg_integer
@typep unused_vars :: %{optional({variable, var_version}) => non_neg_integer | false}
@typep current_vars :: %{optional(variable) => {var_version, var_type}}
@typep prematch_vars :: current_vars | :warn | :raise | :pin | :apply
@typep contextual_vars :: [atom]
@type t :: %{__struct__: __MODULE__,
module: atom,
file: file,
line: line,
function: name_arity | nil,
context: context,
requires: requires,
aliases: aliases,
functions: functions,
macros: macros,
macro_aliases: aliases,
context_modules: context_modules,
vars: vars,
export_vars: export_vars,
lexical_tracker: lexical_tracker,
local: local}
@type t :: %{
__struct__: __MODULE__,
module: atom,
file: file,
line: line,
function: name_arity | nil,
context: context,
requires: requires,
aliases: aliases,
functions: functions,
macros: macros,
macro_aliases: macro_aliases,
context_modules: context_modules,
vars: vars,
unused_vars: unused_vars,
current_vars: current_vars,
prematch_vars: prematch_vars,
lexical_tracker: lexical_tracker,
contextual_vars: contextual_vars
}
# TODO: Remove :vars field on v2.0
def __struct__ do
%{
__struct__: __MODULE__,
%{__struct__: __MODULE__,
module: nil,
file: "nofile",
line: 0,
@@ -111,68 +90,20 @@ defmodule Macro.Env do
macro_aliases: [],
context_modules: [],
vars: [],
unused_vars: %{},
current_vars: %{},
prematch_vars: :warn,
lexical_tracker: nil,
contextual_vars: []
}
end
def __struct__(kv) do
Enum.reduce(kv, __struct__(), fn {k, v}, acc -> :maps.update(k, v, acc) end)
end
@doc """
Returns a list of variables in the current environment.
Each variable is identified by a tuple of two elements,
where the first element is the variable name as an atom
and the second element is its context, which may be an
atom or an integer.
"""
@doc since: "1.7.0"
@spec vars(t) :: [variable]
def vars(env)
def vars(%{__struct__: Macro.Env, current_vars: current_vars}) do
Map.keys(current_vars)
end
@doc """
Checks if a variable belongs to the environment.
"""
@doc since: "1.7.0"
@spec has_var?(t, variable) :: boolean()
def has_var?(env, var)
def has_var?(%{__struct__: Macro.Env, current_vars: current_vars}, var) do
Map.has_key?(current_vars, var)
export_vars: nil,
lexical_tracker: nil}
end
@doc """
Returns a keyword list containing the file and line
information as keys.
"""
@spec location(t) :: keyword
@spec location(t) :: Keyword.t
def location(env)
def location(%{__struct__: Macro.Env, file: file, line: line}) do
[file: file, line: line]
end
@doc """
Returns a `Macro.Env` in the match context.
"""
@spec to_match(t) :: t
def to_match(%{__struct__: Macro.Env, context: :match} = env) do
env
end
def to_match(%{__struct__: Macro.Env, current_vars: vars} = env) do
%{env | context: :match, prematch_vars: vars}
end
@doc """
Returns whether the compilation environment is currently
inside a guard.
@@ -197,10 +128,8 @@ defmodule Macro.Env do
cond do
is_nil(env.module) ->
[{:elixir_compiler, :__FILE__, 1, relative_location(env)}]
is_nil(env.function) ->
[{env.module, :__MODULE__, 0, relative_location(env)}]
true ->
{name, arity} = env.function
[{env.module, name, arity, relative_location(env)}]
@@ -208,6 +137,6 @@ defmodule Macro.Env do
end
defp relative_location(env) do
[file: String.to_charlist(Path.relative_to_cwd(env.file)), line: env.line]
[file: Path.relative_to_cwd(env.file), line: env.line]
end
end
+159 -479
View File
@@ -2,111 +2,18 @@ defmodule Map do
@moduledoc """
A set of functions for working with maps.
Many functions for maps, which implement the `Enumerable` protocol,
are found in the `Enum` module. Additionally, the following functions
for maps are found in `Kernel`:
* `map_size/1`
Maps are the "go to" key-value data structure in Elixir. Maps can be created
with the `%{}` syntax, and key-value pairs can be expressed as `key => value`:
iex> %{}
%{}
iex> %{"one" => :two, 3 => "four"}
%{3 => "four", "one" => :two}
Key-value pairs in a map do not follow any order (that's why the printed map
in the example above has a different order than the map that was created).
Maps do not impose any restriction on the key type: anything can be a key in a
map. As a key-value structure, maps do not allow duplicated keys. Keys are
compared using the exact-equality operator (`===/2`). If colliding keys are defined
in a map literal, the last one prevails.
When the key in a key-value pair is an atom, the `key: value` shorthand syntax
can be used (as in many other special forms), provided key-value pairs are put at
the end:
iex> %{"hello" => "world", a: 1, b: 2}
%{:a => 1, :b => 2, "hello" => "world"}
Keys in maps can be accessed through some of the functions in this module
(such as `Map.get/3` or `Map.fetch/2`) or through the `map[]` syntax provided
by the `Access` module:
iex> map = %{a: 1, b: 2}
iex> Map.fetch(map, :a)
{:ok, 1}
iex> map[:b]
2
iex> map["non_existing_key"]
nil
For accessing atom keys, one may also `map.key`. Note that while `map[key]` will
return `nil` if `map` doesn't contain `key`, `map.key` will raise if `map` doesn't
contain the key `:key`.
iex> map = %{foo: "bar", baz: "bong"}
iex> map.foo
"bar"
iex> map.non_existing_key
** (KeyError) key :non_existing_key not found in: %{baz: "bong", foo: "bar"}
The two syntaxes for accessing keys reveal the dual nature of maps. The `map[key]`
syntax is used for dynamically created maps that may have any key, of any type.
`map.key` is used with maps that hold a predetermined set of atoms keys, which are
expected to always be present. Structs, defined via `defstruct/1`, are one example
of such "static maps", where the keys can also be checked during compile time.
Maps can be pattern matched on. When a map is on the left-hand side of a
pattern match, it will match if the map on the right-hand side contains the
keys on the left-hand side and their values match the ones on the left-hand
side. This means that an empty map matches every map.
iex> %{} = %{foo: "bar"}
%{foo: "bar"}
iex> %{a: a} = %{:a => 1, "b" => 2, [:c, :e, :e] => 3}
iex> a
1
iex> %{:c => 3} = %{:a => 1, 2 => :b}
** (MatchError) no match of right hand side value: %{2 => :b, :a => 1}
Variables can be used as map keys both when writing map literals as well as
when matching:
iex> n = 1
1
iex> %{n => :one}
%{1 => :one}
iex> %{^n => :one} = %{1 => :one, 2 => :two, 3 => :three}
%{1 => :one, 2 => :two, 3 => :three}
Maps also support a specific update syntax to update the value stored under
*existing* atom keys:
iex> map = %{one: 1, two: 2}
iex> %{map | one: "one"}
%{one: "one", two: 2}
iex> %{map | three: 3}
** (KeyError) key :three not found
The functions in this module that need to find a specific key work in logarithmic time.
This means that the time it takes to find keys grows as the map grows, but it's not
directly proportional to the map size. In comparison to finding an element in a list,
it performs better because lists have a linear time complexity. Some functions,
such as `keys/1` and `values/1`, run in linear time because they need to get to every
element in the map.
Maps are key-value stores where keys can be any value and
are compared using the match operator (`===`). Maps can be
created with the `%{}` special form defined in the
`Kernel.SpecialForms` module.
"""
@type key :: any
@type value :: any
@compile {:inline, fetch: 2, fetch!: 2, get: 2, put: 3, delete: 2, has_key?: 2, replace!: 3}
@compile {:inline, fetch: 2, put: 3, delete: 2, has_key?: 2}
@doc """
Returns all keys from `map`.
Inlined by the compiler.
Returns all keys from the map.
## Examples
@@ -118,9 +25,7 @@ defmodule Map do
defdelegate keys(map), to: :maps
@doc """
Returns all values from `map`.
Inlined by the compiler.
Returns all values from the map.
## Examples
@@ -132,12 +37,7 @@ defmodule Map do
defdelegate values(map), to: :maps
@doc """
Converts `map` to a list.
Each key-value pair in the map is converted to a two-element tuple `{key,
value}` in the resulting list.
Inlined by the compiler.
Converts the map to a list.
## Examples
@@ -155,7 +55,7 @@ defmodule Map do
## Examples
iex> Map.new()
iex> Map.new
%{}
"""
@@ -163,7 +63,7 @@ defmodule Map do
def new, do: %{}
@doc """
Creates a map from an `enumerable`.
Creates a map from an enumerable.
Duplicated keys are removed; the latest one prevails.
@@ -171,27 +71,19 @@ defmodule Map do
iex> Map.new([{:b, 1}, {:a, 2}])
%{a: 2, b: 1}
iex> Map.new(a: 1, a: 2, a: 3)
iex> Map.new([a: 1, a: 2, a: 3])
%{a: 3}
"""
@spec new(Enumerable.t()) :: map
def new(enumerable)
def new(list) when is_list(list), do: :maps.from_list(list)
def new(%_{} = struct), do: new_from_enum(struct)
def new(%{} = map), do: map
def new(enum), do: new_from_enum(enum)
defp new_from_enum(enumerable) do
enumerable
|> Enum.to_list()
|> :maps.from_list()
@spec new(Enum.t) :: map
def new(enumerable) do
Enum.reduce(enumerable, %{}, fn {k, v}, acc -> put(acc, k, v) end)
end
@doc """
Creates a map from an `enumerable` via the given transformation function.
Creates a map from an enumerable via the transformation function.
Duplicated keys are removed; the latest one prevails.
Duplicated entries are removed; the latest one prevails.
## Examples
@@ -199,27 +91,17 @@ defmodule Map do
%{a: :a, b: :b}
"""
@spec new(Enumerable.t(), (term -> {key, value})) :: map
def new(enumerable, transform) when is_function(transform, 1) do
enumerable
|> Enum.to_list()
|> new_transform(transform, [])
end
defp new_transform([], _fun, acc) do
acc
|> :lists.reverse()
|> :maps.from_list()
end
defp new_transform([element | rest], fun, acc) do
new_transform(rest, fun, [fun.(element) | acc])
@spec new(Enum.t, (term -> {key, value})) :: map
def new(enumerable, transform) do
fun = fn el, acc ->
{k, v} = transform.(el)
put(acc, k, v)
end
Enum.reduce(enumerable, %{}, fun)
end
@doc """
Returns whether the given `key` exists in the given `map`.
Inlined by the compiler.
Returns whether a given `key` exists in the given `map`.
## Examples
@@ -233,12 +115,9 @@ defmodule Map do
def has_key?(map, key), do: :maps.is_key(key, map)
@doc """
Fetches the value for a specific `key` in the given `map`.
Fetches the value for a specific `key` and returns it in a tuple.
If `map` contains the given `key` with value `value`, then `{:ok, value}` is
returned. If `map` doesn't contain `key`, `:error` is returned.
Inlined by the compiler.
If the `key` does not exist, returns `:error`.
## Examples
@@ -252,13 +131,9 @@ defmodule Map do
def fetch(map, key), do: :maps.find(key, map)
@doc """
Fetches the value for a specific `key` in the given `map`, erroring out if
`map` doesn't contain `key`.
Fetches the value for specific `key`.
If `map` contains the given `key`, the corresponding value is returned. If
`map` doesn't contain `key`, a `KeyError` exception is raised.
Inlined by the compiler.
If `key` does not exist, a `KeyError` is raised.
## Examples
@@ -268,82 +143,40 @@ defmodule Map do
** (KeyError) key :b not found in: %{a: 1}
"""
@spec fetch!(map, key) :: value
@spec fetch!(map, key) :: value | no_return
def fetch!(map, key) do
:maps.get(key, map)
case fetch(map, key) do
{:ok, value} -> value
:error -> raise KeyError, key: key, term: map
end
end
@doc """
Puts the given `value` under `key` unless the entry `key`
already exists in `map`.
already exists.
## Examples
iex> Map.put_new(%{a: 1}, :b, 2)
%{a: 1, b: 2}
%{b: 2, a: 1}
iex> Map.put_new(%{a: 1, b: 2}, :a, 3)
%{a: 1, b: 2}
"""
@spec put_new(map, key, value) :: map
def put_new(map, key, value) do
case map do
%{^key => _value} ->
map
%{} ->
put(map, key, value)
other ->
:erlang.error({:badmap, other})
case has_key?(map, key) do
true -> map
false -> put(map, key, value)
end
end
@doc false
@deprecated "Use Map.fetch/2 + Map.put/3 instead"
def replace(map, key, value) do
case map do
%{^key => _value} ->
put(map, key, value)
%{} ->
map
other ->
:erlang.error({:badmap, other})
end
end
@doc """
Alters the value stored under `key` to `value`, but only
if the entry `key` already exists in `map`.
If `key` is not present in `map`, a `KeyError` exception is raised.
Inlined by the compiler.
## Examples
iex> Map.replace!(%{a: 1, b: 2}, :a, 3)
%{a: 3, b: 2}
iex> Map.replace!(%{a: 1}, :b, 2)
** (KeyError) key :b not found in: %{a: 1}
"""
@doc since: "1.5.0"
@spec replace!(map, key, value) :: map
def replace!(map, key, value) do
:maps.update(key, value, map)
end
@doc """
Evaluates `fun` and puts the result under `key`
in `map` unless `key` is already present.
in map unless `key` is already present.
This function is useful in case you want to compute the value to put under
`key` only if `key` is not already present (e.g., the value is expensive to
calculate or generally difficult to setup and teardown again).
This is useful if the value is very expensive to calculate or
generally difficult to setup and teardown again.
## Examples
@@ -360,23 +193,15 @@ defmodule Map do
"""
@spec put_new_lazy(map, key, (() -> value)) :: map
def put_new_lazy(map, key, fun) when is_function(fun, 0) do
case map do
%{^key => _value} ->
map
%{} ->
put(map, key, fun.())
other ->
:erlang.error({:badmap, other})
case has_key?(map, key) do
true -> map
false -> put(map, key, fun.())
end
end
@doc """
Returns a new map with all the key-value pairs in `map` where the key
is in `keys`.
If `keys` contains keys that are not in `map`, they're simply ignored.
Takes all entries corresponding to the given keys and
returns them in a new map.
## Examples
@@ -385,46 +210,20 @@ defmodule Map do
"""
@spec take(map, [key]) :: map
def take(map, keys)
def take(map, keys) when is_map(map) and is_list(keys) do
take(keys, map, _acc = [])
end
def take(map, keys) when is_map(map) do
IO.warn(
"Map.take/2 with an Enumerable of keys that is not a list is deprecated. " <>
" Use a list of keys instead."
)
take(map, Enum.to_list(keys))
end
def take(non_map, _keys) do
:erlang.error({:badmap, non_map})
end
defp take([], _map, acc) do
:maps.from_list(acc)
end
defp take([key | rest], map, acc) do
acc =
case map do
%{^key => value} -> [{key, value} | acc]
%{} -> acc
def take(map, keys) do
Enum.reduce(keys, new, fn key, acc ->
case fetch(map, key) do
{:ok, value} -> put(acc, key, value)
:error -> acc
end
take(rest, map, acc)
end)
end
@doc """
Gets the value for a specific `key` in `map`.
Gets the value for a specific `key`.
If `key` is present in `map` with value `value`, then `value` is
returned. Otherwise, `default` is returned.
If `default` is not provided, `nil` is used.
If `key` does not exist, return the default value
(`nil` if no default value).
## Examples
@@ -438,25 +237,19 @@ defmodule Map do
3
"""
@spec get(map, key) :: value
@spec get(map, key, value) :: value
def get(map, key, default \\ nil) do
case map do
%{^key => value} ->
value
%{} ->
default
other ->
:erlang.error({:badmap, other}, [map, key, default])
case fetch(map, key) do
{:ok, value} -> value
:error -> default
end
end
@doc """
Gets the value for a specific `key` in `map`.
Gets the value for a specific `key`.
If `key` is present in `map` with value `value`, then `value` is
returned. Otherwise, `fun` is evaluated and its result is returned.
If `key` does not exist, lazily evaluates `fun` and returns its result.
This is useful if the default value is very expensive to calculate or
generally difficult to setup and teardown again.
@@ -476,22 +269,14 @@ defmodule Map do
"""
@spec get_lazy(map, key, (() -> value)) :: value
def get_lazy(map, key, fun) when is_function(fun, 0) do
case map do
%{^key => value} ->
value
%{} ->
fun.()
other ->
:erlang.error({:badmap, other}, [map, key, fun])
case fetch(map, key) do
{:ok, value} -> value
:error -> fun.()
end
end
@doc """
Puts the given `value` under `key` in `map`.
Inlined by the compiler.
Puts the given `value` under `key`.
## Examples
@@ -502,16 +287,14 @@ defmodule Map do
"""
@spec put(map, key, value) :: map
def put(map, key, value) do
:maps.put(key, value, map)
def put(map, key, val) do
:maps.put(key, val, map)
end
@doc """
Deletes the entry in `map` for a specific `key`.
Deletes the entries in the map for a specific `key`.
If the `key` does not exist, returns `map` unchanged.
Inlined by the compiler.
If the `key` does not exist, returns the map unchanged.
## Examples
@@ -527,15 +310,7 @@ defmodule Map do
@doc """
Merges two maps into one.
All keys in `map2` will be added to `map1`, overriding any existing one
(i.e., the keys in `map2` "have precedence" over the ones in `map1`).
If you have a struct and you would like to merge a set of keys into the
struct, do not use this function, as it would merge all keys on the right
side into the struct, even if the key is not part of the struct. Instead,
use `Kernel.struct/2`.
Inlined by the compiler.
All keys in `map2` will be added to `map1`, overriding any existing one.
## Examples
@@ -547,13 +322,10 @@ defmodule Map do
defdelegate merge(map1, map2), to: :maps
@doc """
Merges two maps into one, resolving conflicts through the given `fun`.
Merges two maps into one.
All keys in `map2` will be added to `map1`. The given function will be invoked
when there are duplicate keys; its arguments are `key` (the duplicate key),
`value1` (the value of `key` in `map1`), and `value2` (the value of `key` in
`map2`). The value returned by `fun` is used as the value under `key` in
the resulting map.
All keys in `map2` will be added to `map1`. The given function will
be invoked with the key, value1 and value2 to solve conflicts.
## Examples
@@ -564,29 +336,16 @@ defmodule Map do
"""
@spec merge(map, map, (key, value, value -> value)) :: map
def merge(map1, map2, fun) when is_function(fun, 3) do
if map_size(map1) > map_size(map2) do
folder = fn key, val2, acc ->
update(acc, key, val2, fn val1 -> fun.(key, val1, val2) end)
end
:maps.fold(folder, map1, map2)
else
folder = fn key, val2, acc ->
update(acc, key, val2, fn val1 -> fun.(key, val2, val1) end)
end
:maps.fold(folder, map2, map1)
end
def merge(map1, map2, callback) do
:maps.fold fn k, v2, acc ->
update(acc, k, v2, fn(v1) -> callback.(k, v1, v2) end)
end, map1, map2
end
@doc """
Updates the `key` in `map` with the given function.
If `key` is present in `map` with value `value`, `fun` is invoked with
argument `value` and its result is used as the new value of `key`. If `key` is
not present in `map`, `initial` is inserted as the value of `key`. The initial
value will not be passed through the update function.
If the `key` does not exist, inserts the given `initial` value.
## Examples
@@ -597,25 +356,17 @@ defmodule Map do
"""
@spec update(map, key, value, (value -> value)) :: map
def update(map, key, initial, fun) when is_function(fun, 1) do
case map do
%{^key => value} ->
def update(map, key, initial, fun) do
case fetch(map, key) do
{:ok, value} ->
put(map, key, fun.(value))
%{} ->
:error ->
put(map, key, initial)
other ->
:erlang.error({:badmap, other}, [map, key, initial, fun])
end
end
@doc """
Returns and removes the value associated with `key` in `map`.
If `key` is present in `map` with value `value`, `{value, new_map}` is
returned where `new_map` is the result of removing `key` from `map`. If `key`
is not present in `map`, `{default, map}` is returned.
Returns and removes all values associated with `key` in the `map`.
## Examples
@@ -629,19 +380,14 @@ defmodule Map do
"""
@spec pop(map, key, value) :: {value, map}
def pop(map, key, default \\ nil) do
case :maps.take(key, map) do
{_, _} = tuple -> tuple
case fetch(map, key) do
{:ok, value} -> {value, delete(map, key)}
:error -> {default, map}
end
end
@doc """
Lazily returns and removes the value associated with `key` in `map`.
If `key` is present in `map` with value `value`, `{value, new_map}` is
returned where `new_map` is the result of removing `key` from `map`. If `key`
is not present in `map`, `{fun_result, map}` is returned, where `fun_result`
is the result of applying `fun`.
Lazily returns and removes all values associated with `key` in the `map`.
This is useful if the default value is very expensive to calculate or
generally difficult to setup and teardown again.
@@ -661,22 +407,14 @@ defmodule Map do
"""
@spec pop_lazy(map, key, (() -> value)) :: {value, map}
def pop_lazy(map, key, fun) when is_function(fun, 0) do
case map do
%{^key => value} ->
{value, delete(map, key)}
%{} ->
{fun.(), map}
other ->
:erlang.error({:badmap, other}, [map, key, fun])
case fetch(map, key) do
{:ok, value} -> {value, delete(map, key)}
:error -> {fun.(), map}
end
end
@doc """
Drops the given `keys` from `map`.
If `keys` contains keys that are not in `map`, they're simply ignored.
Drops the given keys from the map.
## Examples
@@ -685,38 +423,17 @@ defmodule Map do
"""
@spec drop(map, [key]) :: map
def drop(map, keys)
def drop(map, keys) when is_map(map) and is_list(keys) do
drop_keys(keys, map)
end
def drop(map, keys) when is_map(map) do
IO.warn(
"Map.drop/2 with an Enumerable of keys that is not a list is deprecated. " <>
" Use a list of keys instead."
)
drop(map, Enum.to_list(keys))
end
def drop(non_map, keys) do
:erlang.error({:badmap, non_map}, [non_map, keys])
end
defp drop_keys([], acc), do: acc
defp drop_keys([key | rest], acc) do
drop_keys(rest, delete(acc, key))
def drop(map, keys) do
Enum.reduce(keys, map, &delete(&2, &1))
end
@doc """
Takes all entries corresponding to the given `keys` in `map` and extracts
them into a separate map.
Takes all entries corresponding to the given keys and extracts them into a
separate map.
Returns a tuple with the new map and the old map with removed keys.
Keys for which there are no entries in `map` are ignored.
Keys for which there are no entires in the map are ignored.
## Examples
@@ -725,45 +442,21 @@ defmodule Map do
"""
@spec split(map, [key]) :: {map, map}
def split(map, keys)
def split(map, keys) when is_map(map) and is_list(keys) do
split(keys, [], map)
end
def split(map, keys) when is_map(map) do
IO.warn(
"Map.split/2 with an Enumerable of keys that is not a list is deprecated. " <>
" Use a list of keys instead."
)
split(map, Enum.to_list(keys))
end
def split(non_map, keys) do
:erlang.error({:badmap, non_map}, [non_map, keys])
end
defp split([], included, excluded) do
{:maps.from_list(included), excluded}
end
defp split([key | rest], included, excluded) do
case excluded do
%{^key => value} ->
split(rest, [{key, value} | included], delete(excluded, key))
_other ->
split(rest, included, excluded)
end
def split(map, keys) do
Enum.reduce(keys, {new, map}, fn key, {inc, exc} = acc ->
case fetch(exc, key) do
{:ok, value} ->
{put(inc, key, value), delete(exc, key)}
:error ->
acc
end
end)
end
@doc """
Updates `key` with the given function.
Updates the `key` with the given function.
If `key` is present in `map` with value `value`, `fun` is invoked with
argument `value` and its result is used as the new value of `key`. If `key` is
not present in `map`, a `KeyError` exception is raised.
If the `key` does not exist, raises `KeyError`.
## Examples
@@ -771,27 +464,31 @@ defmodule Map do
%{a: 2}
iex> Map.update!(%{a: 1}, :b, &(&1 * 2))
** (KeyError) key :b not found in: %{a: 1}
** (KeyError) key :b not found
"""
@spec update!(map, key, (value -> value)) :: map
def update!(map, key, fun) when is_function(fun, 1) do
value = fetch!(map, key)
put(map, key, fun.(value))
@spec update!(map, key, (value -> value)) :: map | no_return
def update!(%{} = map, key, fun) do
case fetch(map, key) do
{:ok, value} ->
put(map, key, fun.(value))
:error ->
:erlang.error({:badkey, key})
end
end
def update!(map, _key, _fun), do: :erlang.error({:badmap, map})
@doc """
Gets the value from `key` and updates it, all in one pass.
`fun` is called with the current value under `key` in `map` (or `nil` if `key`
is not present in `map`) and must return a two-element tuple: the "get" value
(the retrieved value, which can be operated on before being returned) and the
new value to be stored under `key` in the resulting new map. `fun` may also
return `:pop`, which means the current value shall be removed from `map` and
returned (making this function behave like `Map.pop(map, key)`).
This `fun` argument receives the value of `key` (or `nil` if `key`
is not present) and must return a two-elements tuple: the "get" value (the
retrieved value, which can be operated on before being returned) and the new
value to be stored under `key`.
The returned value is a tuple with the "get" value returned by
`fun` and a new map with the updated value under `key`.
The returned value is a tuple with the "get" value returned by `fun` and a
new map with the updated value under `key`.
## Examples
@@ -805,38 +502,34 @@ defmodule Map do
...> end)
{nil, %{b: "new value!", a: 1}}
iex> Map.get_and_update(%{a: 1}, :a, fn _ -> :pop end)
{1, %{}}
iex> Map.get_and_update(%{a: 1}, :b, fn _ -> :pop end)
{nil, %{a: 1}}
"""
@spec get_and_update(map, key, (value -> {get, value} | :pop)) :: {get, map} when get: term
def get_and_update(map, key, fun) when is_function(fun, 1) do
current = get(map, key)
case fun.(current) do
{get, update} ->
{get, put(map, key, update)}
:pop ->
{current, delete(map, key)}
other ->
raise "the given function must return a two-element tuple or :pop, got: #{inspect(other)}"
@spec get_and_update(map, key, (value -> {get, value})) :: {get, map} when get: term
def get_and_update(%{} = map, key, fun) do
current_value = case :maps.find(key, map) do
{:ok, value} -> value
:error -> nil
end
{get, update} = fun.(current_value)
{get, :maps.put(key, update, map)}
end
def get_and_update(map, _key, _fun), do: :erlang.error({:badmap, map})
@doc """
Gets the value from `key` and updates it. Raises if there is no `key`.
Behaves exactly like `get_and_update/3`, but raises a `KeyError` exception if
`key` is not present in `map`.
This `fun` argument receives the value of `key` and must return a
two-elements tuple: the "get" value (the retrieved value, which can be
operated on before being returned) and the new value to be stored under
`key`.
The returned value is a tuple with the "get" value returned by `fun` and a
new map with the updated value under `key`.
## Examples
iex> Map.get_and_update!(%{a: 1}, :a, fn current_value ->
iex> Map.get_and_update!(%{a: 1}, :a, fn(current_value) ->
...> {current_value, "new value!"}
...> end)
{1, %{a: "new value!"}}
@@ -844,37 +537,27 @@ defmodule Map do
iex> Map.get_and_update!(%{a: 1}, :b, fn current_value ->
...> {current_value, "new value!"}
...> end)
** (KeyError) key :b not found in: %{a: 1}
iex> Map.get_and_update!(%{a: 1}, :a, fn _ ->
...> :pop
...> end)
{1, %{}}
** (KeyError) key :b not found
"""
@spec get_and_update!(map, key, (value -> {get, value} | :pop)) :: {get, map}
when get: term
def get_and_update!(map, key, fun) when is_function(fun, 1) do
value = fetch!(map, key)
case fun.(value) do
{get, update} ->
{get, put(map, key, update)}
:pop ->
{value, delete(map, key)}
other ->
raise "the given function must return a two-element tuple or :pop, got: #{inspect(other)}"
@spec get_and_update!(map, key, (value -> {get, value})) :: {get, map} | no_return when get: term
def get_and_update!(%{} = map, key, fun) do
case :maps.find(key, map) do
{:ok, value} ->
{get, update} = fun.(value)
{get, :maps.put(key, update, map)}
:error ->
:erlang.error({:badkey, key})
end
end
def get_and_update!(map, _key, _fun), do: :erlang.error({:badmap, map})
@doc """
Converts a `struct` to map.
Converts a struct to map.
It accepts the struct module or a struct itself and
simply removes the `__struct__` field from the given struct
or from a new struct generated from the given module.
simply removes the `__struct__` field from the struct.
## Example
@@ -891,11 +574,11 @@ defmodule Map do
"""
@spec from_struct(atom | struct) :: map
def from_struct(struct) when is_atom(struct) do
delete(struct.__struct__(), :__struct__)
:maps.remove(:__struct__, struct.__struct__)
end
def from_struct(%_{} = struct) do
delete(struct, :__struct__)
def from_struct(%{__struct__: _} = struct) do
:maps.remove(:__struct__, struct)
end
@doc """
@@ -913,14 +596,11 @@ defmodule Map do
"""
@spec equal?(map, map) :: boolean
def equal?(map1, map2)
def equal?(%{} = map1, %{} = map2), do: map1 === map2
def equal?(%{} = map1, map2), do: :erlang.error({:badmap, map2}, [map1, map2])
def equal?(term, other), do: :erlang.error({:badmap, term}, [term, other])
# TODO: Deprecate by 1.3
# TODO: Remove by 1.4
@doc false
@deprecated "Use Kernel.map_size/1 instead"
def size(map) do
map_size(map)
end
+87 -207
View File
@@ -1,59 +1,24 @@
defmodule MapSet do
@moduledoc """
Functions that work on sets.
A set of functions for working with sets.
`MapSet` is the "go to" set data structure in Elixir. A set can be constructed
using `MapSet.new/0`:
iex> MapSet.new()
#MapSet<[]>
A set can contain any kind of elements, and elements in a set don't have to be
of the same type. By definition, sets can't contain duplicate elements: when
inserting an element in a set where it's already present, the insertion is
simply a no-op.
iex> map_set = MapSet.new()
iex> MapSet.put(map_set, "foo")
#MapSet<["foo"]>
iex> map_set |> MapSet.put("foo") |> MapSet.put("foo")
#MapSet<["foo"]>
A `MapSet` is represented internally using the `%MapSet{}` struct. This struct
can be used whenever there's a need to pattern match on something being a `MapSet`:
iex> match?(%MapSet{}, MapSet.new())
true
Note that, however, the struct fields are private and must not be accessed
directly; use the functions in this module to perform operations on sets.
`MapSet`s can also be constructed starting from other collection-type data
structures: for example, see `MapSet.new/1` or `Enum.into/2`.
`MapSet` is built on top of `Map`, this means that they share many properties,
including logarithmic time complexity. See the documentation for `Map` for more
information on its execution time complexity.
The `MapSet` is represented internally as a struct,
therefore `%MapSet{}` can be used whenever there is a
need to match on any `MapSet`. Note though the struct
fields are private and must not be accessed directly.
Instead, use the functions in this module.
"""
# MapSets have an underlying Map. MapSet elements are keys of said map,
# and this empty list is their associated dummy value.
@dummy_value []
@opaque t :: %__MODULE__{map: map}
@type value :: term
@opaque t(value) :: %__MODULE__{map: %{optional(value) => []}}
@type t :: t(term)
# TODO: Remove version key on v2.0
defstruct map: %{}, version: 2
defstruct map: %{}
@doc """
Returns a new set.
## Examples
iex> MapSet.new()
iex> MapSet.new
#MapSet<[]>
"""
@@ -71,22 +36,13 @@ defmodule MapSet do
#MapSet<[1, 2, 3]>
"""
@spec new(Enum.t()) :: t
def new(enumerable)
def new(%__MODULE__{} = map_set), do: map_set
@spec new(Enum.t) :: t
def new(enumerable) do
map =
enumerable
|> Enum.to_list()
|> new_from_list([])
%MapSet{map: map}
Enum.reduce(enumerable, %MapSet{}, &put(&2, &1))
end
@doc """
Creates a set from an enumerable via the transformation function.
Creates a mapset from an enumerable via the transformation function.
## Examples
@@ -94,53 +50,32 @@ defmodule MapSet do
#MapSet<[2, 4]>
"""
@spec new(Enum.t(), (term -> val)) :: t(val) when val: value
def new(enumerable, transform) when is_function(transform, 1) do
map =
enumerable
|> Enum.to_list()
|> new_from_list_transform(transform, [])
%MapSet{map: map}
end
defp new_from_list([], acc) do
:maps.from_list(acc)
end
defp new_from_list([element | rest], acc) do
new_from_list(rest, [{element, @dummy_value} | acc])
end
defp new_from_list_transform([], _fun, acc) do
:maps.from_list(acc)
end
defp new_from_list_transform([element | rest], fun, acc) do
new_from_list_transform(rest, fun, [{fun.(element), @dummy_value} | acc])
@spec new(Enum.t, (term -> term)) :: t
def new(enumerable, transform) do
Enum.reduce(enumerable, %MapSet{}, &put(&2, transform.(&1)))
end
@doc """
Deletes `value` from `map_set`.
Deletes `value` from `set`.
Returns a new set which is a copy of `map_set` but without `value`.
Returns a new set which is a copy of `set` but without `value`.
## Examples
iex> map_set = MapSet.new([1, 2, 3])
iex> MapSet.delete(map_set, 4)
iex> set = MapSet.new([1, 2, 3])
iex> MapSet.delete(set, 4)
#MapSet<[1, 2, 3]>
iex> MapSet.delete(map_set, 2)
iex> MapSet.delete(set, 2)
#MapSet<[1, 3]>
"""
@spec delete(t(val1), val2) :: t(val1) when val1: value, val2: value
def delete(%MapSet{map: map} = map_set, value) do
%{map_set | map: Map.delete(map, value)}
@spec delete(t, value) :: t
def delete(%MapSet{map: map} = set, term) do
%{set | map: Map.delete(map, term)}
end
@doc """
Returns a set that is `map_set1` without the members of `map_set2`.
Returns a set that is `set1` without the members of `set2`.
## Examples
@@ -148,40 +83,16 @@ defmodule MapSet do
#MapSet<[1]>
"""
@spec difference(t(val1), t(val2)) :: t(val1) when val1: value, val2: value
def difference(map_set1, map_set2)
# If the first set is less than twice the size of the second map,
# it is fastest to re-accumulate elements in the first set that are not
# present in the second set.
def difference(%MapSet{map: map1}, %MapSet{map: map2})
when map_size(map1) < map_size(map2) * 2 do
map =
map1
|> Map.keys()
|> filter_not_in(map2, [])
@spec difference(t, t) :: t
def difference(%MapSet{map: map1}, %MapSet{map: map2}) do
map = :maps.fold(fn value, _, acc ->
Map.delete(acc, value)
end, map1, map2)
%MapSet{map: map}
end
# If the second set is less than half the size of the first set, it's fastest
# to simply iterate through each element in the second set, deleting them from
# the first set.
def difference(%MapSet{map: map1} = map_set, %MapSet{map: map2}) do
%{map_set | map: Map.drop(map1, Map.keys(map2))}
end
defp filter_not_in([], _map2, acc), do: :maps.from_list(acc)
defp filter_not_in([key | rest], map2, acc) do
case map2 do
%{^key => _} -> filter_not_in(rest, map2, acc)
_ -> filter_not_in(rest, map2, [{key, @dummy_value} | acc])
end
end
@doc """
Checks if `map_set1` and `map_set2` have no members in common.
Checks if `set1` and `set2` have no members in common.
## Examples
@@ -193,28 +104,22 @@ defmodule MapSet do
"""
@spec disjoint?(t, t) :: boolean
def disjoint?(%MapSet{map: map1}, %MapSet{map: map2}) do
{map1, map2} = order_by_size(map1, map2)
map1
|> Map.keys()
|> none_in?(map2)
end
defp none_in?([], _) do
true
end
defp none_in?([key | rest], map2) do
case map2 do
%{^key => _} -> false
_ -> none_in?(rest, map2)
end
if map_size(map1) > map_size(map2), do: {map1, map2} = {map2, map1}
:maps.fold(fn value, _, _ ->
if Map.has_key?(map2, value) do
throw({:halt, false})
else
true
end
end, true, map1)
catch
{:halt, false} -> false
end
@doc """
Checks if two sets are equal.
The comparison between elements must be done using `===/2`.
The comparison between elements must be done using `===`.
## Examples
@@ -225,18 +130,12 @@ defmodule MapSet do
"""
@spec equal?(t, t) :: boolean
def equal?(%MapSet{map: map1, version: version}, %MapSet{map: map2, version: version}) do
def equal?(%MapSet{map: map1}, %MapSet{map: map2}) do
Map.equal?(map1, map2)
end
# Elixir v1.5 change the map representation, so on
# version mismatch we need to compare the keys directly.
def equal?(%MapSet{map: map1}, %MapSet{map: map2}) do
map_size(map1) == map_size(map2) and map_subset?(Map.keys(map1), map2)
end
@doc """
Returns a set containing only members that `map_set1` and `map_set2` have in common.
Returns a set containing only members that `set1` and `set2` have in common.
## Examples
@@ -247,14 +146,21 @@ defmodule MapSet do
#MapSet<[]>
"""
@spec intersection(t(val), t(val)) :: t(val) when val: value
def intersection(%MapSet{map: map1} = map_set, %MapSet{map: map2}) do
{map1, map2} = order_by_size(map1, map2)
%{map_set | map: Map.take(map2, Map.keys(map1))}
@spec intersection(t, t) :: t
def intersection(%MapSet{map: map1}, %MapSet{map: map2}) do
if map_size(map1) > map_size(map2), do: {map1, map2} = {map2, map1}
map = :maps.fold(fn value, _, acc ->
if Map.has_key?(map2, value) do
Map.put(acc, value, true)
else
acc
end
end, %{}, map1)
%MapSet{map: map}
end
@doc """
Checks if `map_set` contains `value`.
Checks if `set` contains `value`.
## Examples
@@ -266,11 +172,11 @@ defmodule MapSet do
"""
@spec member?(t, value) :: boolean
def member?(%MapSet{map: map}, value) do
match?(%{^value => _}, map)
Map.has_key?(map, value)
end
@doc """
Inserts `value` into `map_set` if `map_set` doesn't already contain it.
Inserts `value` into `set` if `set` doesn't already contain it.
## Examples
@@ -280,13 +186,13 @@ defmodule MapSet do
#MapSet<[1, 2, 3, 4]>
"""
@spec put(t(val), new_val) :: t(val | new_val) when val: value, new_val: value
def put(%MapSet{map: map} = map_set, value) do
%{map_set | map: Map.put(map, value, @dummy_value)}
@spec put(t, value) :: t
def put(%MapSet{map: map} = set, value) do
%{set | map: Map.put(map, value, true)}
end
@doc """
Returns the number of elements in `map_set`.
Returns the number of elements in `set`.
## Examples
@@ -300,9 +206,9 @@ defmodule MapSet do
end
@doc """
Checks if `map_set1`'s members are all contained in `map_set2`.
Checks if `set1`'s members are all contained in `set2`.
This function checks if `map_set1` is a subset of `map_set2`.
This function checks if `set1` is a subset of `set2`.
## Examples
@@ -315,22 +221,22 @@ defmodule MapSet do
@spec subset?(t, t) :: boolean
def subset?(%MapSet{map: map1}, %MapSet{map: map2}) do
if map_size(map1) <= map_size(map2) do
map1
|> Map.keys()
|> map_subset?(map2)
:maps.fold(fn value, _, _ ->
if Map.has_key?(map2, value) do
true
else
throw({:halt, false})
end
end, true, map1)
else
false
end
end
defp map_subset?([], _), do: true
defp map_subset?([key | rest], map2) do
match?(%{^key => _}, map2) and map_subset?(rest, map2)
catch
{:halt, false} -> false
end
@doc """
Converts `map_set` to a list.
Converts `set` to a list.
## Examples
@@ -338,13 +244,13 @@ defmodule MapSet do
[1, 2, 3]
"""
@spec to_list(t(val)) :: [val] when val: value
@spec to_list(t) :: list
def to_list(%MapSet{map: map}) do
Map.keys(map)
end
@doc """
Returns a set containing all members of `map_set1` and `map_set2`.
Returns a set containing all members of `set1` and `set2`.
## Examples
@@ -352,58 +258,32 @@ defmodule MapSet do
#MapSet<[1, 2, 3, 4]>
"""
@spec union(t(val1), t(val2)) :: t(val1 | val2) when val1: value, val2: value
def union(map_set1, map_set2)
def union(%MapSet{map: map1, version: version} = map_set, %MapSet{map: map2, version: version}) do
%{map_set | map: Map.merge(map1, map2)}
end
@spec union(t, t) :: t
def union(%MapSet{map: map1}, %MapSet{map: map2}) do
map = new_from_list(Map.keys(map1) ++ Map.keys(map2), [])
%MapSet{map: map}
%MapSet{map: Map.merge(map1, map2)}
end
@compile {:inline, [order_by_size: 2]}
defp order_by_size(map1, map2) when map_size(map1) > map_size(map2), do: {map2, map1}
defp order_by_size(map1, map2), do: {map1, map2}
defimpl Enumerable do
def count(map_set) do
{:ok, MapSet.size(map_set)}
end
def member?(map_set, val) do
{:ok, MapSet.member?(map_set, val)}
end
def slice(map_set) do
{:ok, MapSet.size(map_set), &Enumerable.List.slice(MapSet.to_list(map_set), &1, &2)}
end
def reduce(map_set, acc, fun) do
Enumerable.List.reduce(MapSet.to_list(map_set), acc, fun)
end
def reduce(set, acc, fun), do: Enumerable.List.reduce(MapSet.to_list(set), acc, fun)
def member?(set, val), do: {:ok, MapSet.member?(set, val)}
def count(set), do: {:ok, MapSet.size(set)}
end
defimpl Collectable do
def into(map_set) do
fun = fn
list, {:cont, x} -> [{x, []} | list]
list, :done -> %{map_set | map: Map.merge(map_set.map, Map.new(list))}
def into(original) do
{original, fn
set, {:cont, x} -> MapSet.put(set, x)
set, :done -> set
_, :halt -> :ok
end
{[], fun}
end}
end
end
defimpl Inspect do
import Inspect.Algebra
def inspect(map_set, opts) do
opts = %Inspect.Opts{opts | charlists: :as_lists}
concat(["#MapSet<", Inspect.List.inspect(MapSet.to_list(map_set), opts), ">"])
def inspect(set, opts) do
concat ["#MapSet<", Inspect.List.inspect(MapSet.to_list(set), opts), ">"]
end
end
end
+661 -1597
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+319 -211
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@@ -4,249 +4,357 @@
#
# ## Implementation
#
# The implementation uses ETS to track all dependencies
# resembling a graph. The keys and what they point to are:
# The implementation uses the digraph module to track
# all dependencies. The graph starts with one main vertex:
#
# * `:reattach` points to `{name, arity}`
# * `{:local, {name, arity}}` points to `{{name, arity}, line, macro_dispatch?}`
# * `{:import, {name, arity}}` points to `Module`
# * `:local` - points to local functions
#
# This is built on top of the internal module tables.
# We can also have the following vertices:
#
# * `Module` - a module that was invoked via an import
# * `{name, arity}` - a local function/arity pair
# * `{:import, name, arity}` - an invoked function/arity import
#
# Each of those vertices can associate to other vertices
# as described below:
#
# * `Module`
# * in neighbours: `{:import, name, arity}`
#
# * `{name, arity}`
# * in neighbours: `:local`, `{name, arity}`
# * out neighbours: `{:import, name, arity}`
#
# * `{:import, name, arity}`
# * in neighbours: `{name, arity}`
# * out neighbours: `Module`
#
# Note that since this is required for bootstrap, we can't use
# any of the `GenServer` conveniences.
defmodule Module.LocalsTracker do
@moduledoc false
@defmacros [:defmacro, :defmacrop]
@timeout 30_000
@behaviour :gen_server
@type ref :: pid | module
@type name :: atom
@type name_arity :: {name, arity}
@type local :: {name, arity}
@type import :: {:import, name, arity}
# Public API
@doc """
Adds and tracks defaults for a definition into the tracker.
Returns all imported modules that had the given
`{name, arity}` invoked.
"""
def add_defaults({_set, bag}, kind, {name, arity} = pair, defaults, meta) do
for i <- :lists.seq(arity - defaults, arity - 1) do
put_edge(bag, {:local, {name, i}}, {pair, get_line(meta), kind in @defmacros})
end
:ok
@spec imports_with_dispatch(ref, name_arity) :: [module]
def imports_with_dispatch(ref, {name, arity}) do
d = :gen_server.call(to_pid(ref), :digraph, @timeout)
:digraph.out_neighbours(d, {:import, name, arity})
end
@doc """
Adds a local dispatch from-to the given target.
"""
def add_local({_set, bag}, from, to, meta, macro_dispatch?)
when is_tuple(from) and is_tuple(to) and is_boolean(macro_dispatch?) do
put_edge(bag, {:local, from}, {to, get_line(meta), macro_dispatch?})
:ok
end
@doc """
Adds an import dispatch to the given target.
"""
def add_import({set, _bag}, function, module, imported)
when is_tuple(function) and is_atom(module) do
put_edge(set, {:import, imported}, module)
:ok
end
@doc """
Yanks a local node. Returns its in and out vertices in a tuple.
"""
def yank({_set, bag}, local) do
:lists.usort(take_out_neighbours(bag, {:local, local}))
end
@doc """
Reattach a previously yanked node.
"""
def reattach({_set, bag}, tuple, kind, function, out_neighbours, meta) do
for out_neighbour <- out_neighbours do
put_edge(bag, {:local, function}, out_neighbour)
end
# Make a call from the old function to the new one
if function != tuple do
put_edge(bag, {:local, function}, {tuple, get_line(meta), kind in @defmacros})
end
# Finally marked the new one as reattached
put_edge(bag, :reattach, tuple)
:ok
end
# Collecting all conflicting imports with the given functions
@doc false
def collect_imports_conflicts({set, _bag}, all_defined) do
for {pair, _, meta, _} <- all_defined, n = out_neighbour(set, {:import, pair}) do
{meta, {n, pair}}
end
end
@doc """
Collect all unused definitions based on the private
given, also accounting the expected number of default
clauses a private function have.
"""
def collect_unused_locals({_set, bag}, all_defined, private) do
reachable =
Enum.reduce(all_defined, %{}, fn {pair, kind, _, _}, acc ->
if kind in [:def, :defmacro] do
reachable_from(bag, pair, acc)
else
acc
end
end)
reattached = :lists.usort(out_neighbours(bag, :reattach))
{unreachable(reachable, reattached, private), collect_warnings(reachable, private)}
end
@doc """
Collect undefined functions based on local calls and existing definitions.
"""
def collect_undefined_locals({set, bag}, all_defined) do
undefined =
for {pair, _, meta, _} <- all_defined,
{local, line, macro_dispatch?} <- out_neighbours(bag, {:local, pair}),
error = undefined_local_error(set, local, macro_dispatch?),
do: {build_meta(line, meta), local, error}
:lists.usort(undefined)
end
defp undefined_local_error(set, local, true) do
case :ets.member(set, {:def, local}) do
true -> false
false -> :undefined_function
end
end
defp undefined_local_error(set, local, false) do
try do
if :ets.lookup_element(set, {:def, local}, 2) in @defmacros do
:incorrect_dispatch
else
false
end
catch
_, _ -> :undefined_function
end
end
defp unreachable(reachable, reattached, private) do
for {tuple, kind, _, _} <- private,
not reachable?(tuple, kind, reachable, reattached),
do: tuple
end
defp reachable?(tuple, :defmacrop, reachable, reattached) do
# All private micros are unreachable unless they have been
# reattached and they are reachable.
:lists.member(tuple, reattached) and Map.has_key?(reachable, tuple)
end
defp reachable?(tuple, :defp, reachable, _reattached) do
Map.has_key?(reachable, tuple)
end
defp collect_warnings(reachable, private) do
:lists.foldl(&collect_warnings(&1, &2, reachable), [], private)
end
defp collect_warnings({_, _, false, _}, acc, _reachable) do
acc
end
defp collect_warnings({tuple, kind, meta, 0}, acc, reachable) do
if Map.has_key?(reachable, tuple) do
acc
else
[{meta, {:unused_def, tuple, kind}} | acc]
end
end
defp collect_warnings({tuple, kind, meta, default}, acc, reachable) when default > 0 do
{name, arity} = tuple
min = arity - default
max = arity
case min_reachable_default(max, min, :none, name, reachable) do
:none -> [{meta, {:unused_def, tuple, kind}} | acc]
^min -> acc
^max -> [{meta, {:unused_args, tuple}} | acc]
diff -> [{meta, {:unused_args, tuple, diff}} | acc]
end
end
defp min_reachable_default(max, min, last, name, reachable) when max >= min do
case Map.has_key?(reachable, {name, max}) do
true -> min_reachable_default(max - 1, min, max, name, reachable)
false -> min_reachable_default(max - 1, min, last, name, reachable)
end
end
defp min_reachable_default(_max, _min, last, _name, _reachable) do
last
end
@doc """
Returns all local nodes reachable from `vertex`.
Returns all locals that are reachable.
By default, all public functions are reachable.
A private function is only reachable if it has
a public function that it invokes directly.
"""
def reachable_from({_, bag}, local) do
bag
|> reachable_from(local, %{})
|> Map.keys()
@spec reachable(ref) :: [local]
def reachable(ref) do
reachable_from(:gen_server.call(to_pid(ref), :digraph, @timeout), :local)
end
defp reachable_from(bag, local, vertices) do
vertices = Map.put(vertices, local, true)
defp reachable_from(d, starting) do
:sets.to_list(reduce_reachable(d, starting, :sets.new))
end
Enum.reduce(out_neighbours(bag, {:local, local}), vertices, fn {local, _line, _}, acc ->
case acc do
%{^local => true} -> acc
_ -> reachable_from(bag, local, acc)
defp reduce_reachable(d, vertex, vertices) do
neighbours = :digraph.out_neighbours(d, vertex)
neighbours = (for {_, _} = t <- neighbours, do: t) |> :sets.from_list
remaining = :sets.subtract(neighbours, vertices)
vertices = :sets.union(neighbours, vertices)
:sets.fold(&reduce_reachable(d, &1, &2), vertices, remaining)
end
defp to_pid(pid) when is_pid(pid), do: pid
defp to_pid(mod) when is_atom(mod) do
table = :elixir_module.data_table(mod)
[{_, val}] = :ets.lookup(table, {:elixir, :locals_tracker})
val
end
# Internal API
# Starts the tracker and returns its pid.
@doc false
def start_link do
:gen_server.start_link(__MODULE__, [], [])
end
# Adds a definition into the tracker. A public
# definition is connected with the :local node
# while a private one is left unreachable until
# a call is made to.
@doc false
def add_definition(pid, kind, tuple) when kind in [:def, :defp, :defmacro, :defmacrop] do
:gen_server.cast(pid, {:add_definition, kind, tuple})
end
# Adds and tracks defaults for a definition into the tracker.
@doc false
def add_defaults(pid, kind, tuple, defaults) when kind in [:def, :defp, :defmacro, :defmacrop] do
:gen_server.cast(pid, {:add_defaults, kind, tuple, defaults})
end
# Adds a local dispatch to the given target.
def add_local(pid, to) when is_tuple(to) do
:gen_server.cast(pid, {:add_local, :local, to})
end
# Adds a local dispatch from-to the given target.
@doc false
def add_local(pid, from, to) when is_tuple(from) and is_tuple(to) do
:gen_server.cast(pid, {:add_local, from, to})
end
# Adds a import dispatch to the given target.
@doc false
def add_import(pid, function, module, target) when is_atom(module) and is_tuple(target) do
:gen_server.cast(pid, {:add_import, function, module, target})
end
# Yanks a local node. Returns its in and out vertices in a tuple.
@doc false
def yank(pid, local) do
:gen_server.call(to_pid(pid), {:yank, local}, @timeout)
end
# Reattach a previously yanked node
@doc false
def reattach(pid, kind, tuple, neighbours) do
:gen_server.cast(to_pid(pid), {:reattach, kind, tuple, neighbours})
end
# Collecting all conflicting imports with the given functions
@doc false
def collect_imports_conflicts(pid, all_defined) do
d = :gen_server.call(pid, :digraph, @timeout)
for {name, arity} <- all_defined,
:digraph.in_neighbours(d, {:import, name, arity}) != [],
n = :digraph.out_neighbours(d, {:import, name, arity}),
n != [] do
{n, name, arity}
end
end
# Collect all unused definitions based on the private
# given also accounting the expected amount of default
# clauses a private function have.
@doc false
def collect_unused_locals(ref, private) do
d = :gen_server.call(to_pid(ref), :digraph, @timeout)
{unreachable(d, private), collect_warnings(d, private)}
end
defp unreachable(d, private) do
unreachable = for {tuple, _, _} <- private, do: tuple
private =
for {tuple, :defp, _} <- private do
neighbours = :digraph.in_neighbours(d, tuple)
neighbours = for {_, _} = t <- neighbours, do: t
{tuple, :sets.from_list(neighbours)}
end
end)
reduce_unreachable(private, [], :sets.from_list(unreachable))
end
defp get_line(meta), do: Keyword.get(meta, :line)
defp build_meta(nil, _meta), do: []
# We need to transform any file annotation in the function
# definition into a keep annotation that is used by the
# error handling system in order to respect line/file.
defp build_meta(line, meta) do
case Keyword.get(meta, :file) do
{file, _} -> [keep: {file, line}]
_ -> [line: line]
defp reduce_unreachable([{vertex, callers}|t], acc, unreachable) do
if :sets.is_subset(callers, unreachable) do
reduce_unreachable(t, [{vertex, callers}|acc], unreachable)
else
reduce_unreachable(acc ++ t, [], :sets.del_element(vertex, unreachable))
end
end
## Lightweight digraph implementation
defp put_edge(d, from, to) do
:ets.insert(d, {from, to})
defp reduce_unreachable([], _acc, unreachable) do
:sets.to_list(unreachable)
end
defp out_neighbour(d, from) do
try do
:ets.lookup_element(d, from, 2)
catch
:error, :badarg -> nil
defp collect_warnings(d, private) do
reachable = reachable_from(d, :local)
:lists.foldl(&collect_warnings(&1, &2, reachable), [], private)
end
defp collect_warnings({tuple, kind, 0}, acc, reachable) do
if :lists.member(tuple, reachable) do
acc
else
[{:unused_def, tuple, kind}|acc]
end
end
defp out_neighbours(d, from) do
try do
:ets.lookup_element(d, from, 2)
catch
:error, :badarg -> []
defp collect_warnings({tuple, kind, default}, acc, reachable) when default > 0 do
{name, arity} = tuple
min = arity - default
max = arity
invoked = for {n, a} <- reachable, n == name, a in min..max, do: a
if invoked == [] do
[{:unused_def, tuple, kind}|acc]
else
case :lists.min(invoked) - min do
0 -> acc
^default -> [{:unused_args, tuple}|acc]
unused_args -> [{:unused_args, tuple, unused_args}|acc]
end
end
end
defp take_out_neighbours(d, from) do
Keyword.values(:ets.take(d, from))
@doc false
def cache_env(pid, env) do
:gen_server.call(pid, {:cache_env, env}, @timeout)
end
@doc false
def get_cached_env(pid, ref) do
:gen_server.call(pid, {:get_cached_env, ref}, @timeout)
end
# Stops the gen server
@doc false
def stop(pid) do
:gen_server.cast(pid, :stop)
end
# Callbacks
def init([]) do
d = :digraph.new([:protected])
:digraph.add_vertex(d, :local)
{:ok, {d, []}}
end
@doc false
def handle_call({:cache_env, env}, _from, {d, cache}) do
case cache do
[{i, ^env}|_] ->
{:reply, i, {d, cache}}
t ->
i = length(t)
{:reply, i, {d, [{i, env}|t]}}
end
end
def handle_call({:get_cached_env, ref}, _from, {_, cache} = state) do
{^ref, env} = :lists.keyfind(ref, 1, cache)
{:reply, env, state}
end
def handle_call({:yank, local}, _from, {d, _} = state) do
out_vertices = :digraph.out_neighbours(d, local)
:digraph.del_edges(d, :digraph.out_edges(d, local))
{:reply, {[], out_vertices}, state}
end
def handle_call(:digraph, _from, {d, _} = state) do
{:reply, d, state}
end
@doc false
def handle_info(_msg, state) do
{:noreply, state}
end
def handle_cast({:add_local, from, to}, {d, _} = state) do
handle_add_local(d, from, to)
{:noreply, state}
end
def handle_cast({:add_import, function, module, {name, arity}}, {d, _} = state) do
handle_import(d, function, module, name, arity)
{:noreply, state}
end
def handle_cast({:add_definition, kind, tuple}, {d, _} = state) do
handle_add_definition(d, kind, tuple)
{:noreply, state}
end
def handle_cast({:add_defaults, kind, {name, arity}, defaults}, {d, _} = state) do
for i <- :lists.seq(arity - defaults, arity - 1) do
handle_add_definition(d, kind, {name, i})
handle_add_local(d, {name, i}, {name, i + 1})
end
{:noreply, state}
end
def handle_cast({:reattach, _kind, tuple, {in_neigh, out_neigh}}, {d, _} = state) do
for from <- in_neigh do
:digraph.add_vertex(d, from)
replace_edge!(d, from, tuple)
end
for to <- out_neigh do
:digraph.add_vertex(d, to)
replace_edge!(d, tuple, to)
end
{:noreply, state}
end
def handle_cast(:stop, state) do
{:stop, :normal, state}
end
@doc false
def terminate(_reason, _state) do
:ok
end
@doc false
def code_change(_old, state, _extra) do
{:ok, state}
end
defp handle_import(d, function, module, name, arity) do
:digraph.add_vertex(d, module)
tuple = {:import, name, arity}
:digraph.add_vertex(d, tuple)
replace_edge!(d, tuple, module)
if function != nil do
replace_edge!(d, function, tuple)
end
:ok
end
defp handle_add_local(d, from, to) do
:digraph.add_vertex(d, to)
replace_edge!(d, from, to)
end
defp handle_add_definition(d, public, tuple) when public in [:def, :defmacro] do
:digraph.add_vertex(d, tuple)
replace_edge!(d, :local, tuple)
end
defp handle_add_definition(d, private, tuple) when private in [:defp, :defmacrop] do
:digraph.add_vertex(d, tuple)
end
defp replace_edge!(d, from, to) do
_ = unless :lists.member(to, :digraph.out_neighbours(d, from)) do
[:"$e"|_] = :digraph.add_edge(d, from, to)
end
:ok
end
end
+36 -36
View File
@@ -16,7 +16,8 @@ defmodule Node do
This functionality starts the `:net_kernel` and other
related processes.
"""
@spec start(node, :longnames | :shortnames, non_neg_integer) :: {:ok, pid} | {:error, term}
@spec start(node, :longnames | :shortnames, non_neg_integer) ::
{:ok, pid} | {:error, term}
def start(name, type \\ :longnames, tick_time \\ 15000) do
:net_kernel.start([name, type, tick_time])
end
@@ -59,8 +60,6 @@ defmodule Node do
the local node.
Same as `list(:visible)`.
Inlined by the compiler.
"""
@spec list :: [t]
def list do
@@ -73,11 +72,10 @@ defmodule Node do
The result returned when the argument is a list, is the list of nodes
satisfying the disjunction(s) of the list elements.
For more information, see `:erlang.nodes/1`.
Inlined by the compiler.
For more information, see
[`:erlang.nodes/1`](http://www.erlang.org/doc/man/erlang.html#nodes-1).
"""
@type state :: :visible | :hidden | :connected | :this | :known
@typep state :: :visible | :hidden | :connected | :this | :known
@spec list(state | [state]) :: [t]
def list(args) do
:erlang.nodes(args)
@@ -89,9 +87,8 @@ defmodule Node do
If `flag` is `true`, monitoring is turned on.
If `flag` is `false`, monitoring is turned off.
For more information, see `:erlang.monitor_node/2`.
For monitoring status changes of all nodes, see `:net_kernel.monitor_nodes/3`.
For more information, see
[`:erlang.monitor_node/2`](http://www.erlang.org/doc/man/erlang.html#monitor_node-2).
"""
@spec monitor(t, boolean) :: true
def monitor(node, flag) do
@@ -102,9 +99,8 @@ defmodule Node do
Behaves as `monitor/2` except that it allows an extra
option to be given, namely `:allow_passive_connect`.
For more information, see `:erlang.monitor_node/3`.
For monitoring status changes of all nodes, see `:net_kernel.monitor_nodes/3`.
For more information, see
[`:erlang.monitor_node/3`](http://www.erlang.org/doc/man/erlang.html#monitor_node-3).
"""
@spec monitor(t, boolean, [:allow_passive_connect]) :: true
def monitor(node, flag, options) do
@@ -135,7 +131,8 @@ defmodule Node do
protocols. Returns `true` if disconnection succeeds, otherwise `false`.
If the local node is not alive, the function returns `:ignored`.
For more information, see `:erlang.disconnect_node/1`.
For more information, see
[`:erlang.disconnect_node/1`](http://www.erlang.org/doc/man/erlang.html#disconnect_node-1).
"""
@spec disconnect(t) :: boolean | :ignored
def disconnect(node) do
@@ -148,7 +145,8 @@ defmodule Node do
Returns `true` if successful, `false` if not, and the atom
`:ignored` if the local node is not alive.
For more information, see `:net_kernel.connect_node/1`.
For more information, see
[`:erlang.connect_node/1`](http://www.erlang.org/doc/man/net_kernel.html#connect_node-1).
"""
@spec connect(t) :: boolean | :ignored
def connect(node) do
@@ -156,10 +154,11 @@ defmodule Node do
end
@doc """
Returns the PID of a new process started by the application of `fun`
on `node`. If `node` does not exist, a useless PID is returned.
Returns the pid of a new process started by the application of `fun`
on `node`. If `node` does not exist, a useless pid is returned.
For the list of available options, see `:erlang.spawn/2`.
For the list of available options, see
[`:erlang.spawn/2`](http://www.erlang.org/doc/man/erlang.html#spawn-2).
Inlined by the compiler.
"""
@@ -169,27 +168,29 @@ defmodule Node do
end
@doc """
Returns the PID of a new process started by the application of `fun`
Returns the pid of a new process started by the application of `fun`
on `node`.
If `node` does not exist, a useless PID is returned.
If `node` does not exist, a useless pid is returned.
For the list of available options, see `:erlang.spawn_opt/3`.
For the list of available options, see
[`:erlang.spawn_opt/3`](http://www.erlang.org/doc/man/erlang.html#spawn_opt-3).
Inlined by the compiler.
"""
@spec spawn(t, (() -> any), Process.spawn_opts()) :: pid | {pid, reference}
@spec spawn(t, (() -> any), Process.spawn_opts) :: pid | {pid, reference}
def spawn(node, fun, opts) do
:erlang.spawn_opt(node, fun, opts)
end
@doc """
Returns the PID of a new process started by the application of
Returns the pid of a new process started by the application of
`module.function(args)` on `node`.
If `node` does not exist, a useless PID is returned.
If `node` does not exist, a useless pid is returned.
For the list of available options, see `:erlang.spawn/4`.
For the list of available options, see
[`:erlang.spawn/4`](http://www.erlang.org/doc/man/erlang.html#spawn-4).
Inlined by the compiler.
"""
@@ -199,25 +200,26 @@ defmodule Node do
end
@doc """
Returns the PID of a new process started by the application of
Returns the pid of a new process started by the application of
`module.function(args)` on `node`.
If `node` does not exist, a useless PID is returned.
If `node` does not exist, a useless pid is returned.
For the list of available options, see `:erlang.spawn/5`.
For the list of available options, see
[`:erlang.spawn/5`](http://www.erlang.org/doc/man/erlang.html#spawn_opt-5).
Inlined by the compiler.
"""
@spec spawn(t, module, atom, [any], Process.spawn_opts()) :: pid | {pid, reference}
@spec spawn(t, module, atom, [any], Process.spawn_opts) :: pid | {pid, reference}
def spawn(node, module, fun, args, opts) do
:erlang.spawn_opt(node, module, fun, args, opts)
end
@doc """
Returns the PID of a new linked process started by the application of `fun` on `node`.
Returns the pid of a new linked process started by the application of `fun` on `node`.
A link is created between the calling process and the new process, atomically.
If `node` does not exist, a useless PID is returned (and due to the link, an exit
If `node` does not exist, a useless pid is returned (and due to the link, an exit
signal with exit reason `:noconnection` will be received).
Inlined by the compiler.
@@ -228,11 +230,11 @@ defmodule Node do
end
@doc """
Returns the PID of a new linked process started by the application of
Returns the pid of a new linked process started by the application of
`module.function(args)` on `node`.
A link is created between the calling process and the new process, atomically.
If `node` does not exist, a useless PID is returned (and due to the link, an exit
If `node` does not exist, a useless pid is returned (and due to the link, an exit
signal with exit reason `:noconnection` will be received).
Inlined by the compiler.
@@ -250,8 +252,7 @@ defmodule Node do
This function will raise `FunctionClauseError` if the given `node` is not alive.
"""
@spec set_cookie(t, atom) :: true
def set_cookie(node \\ Node.self(), cookie) when is_atom(cookie) do
def set_cookie(node \\ Node.self, cookie) when is_atom(cookie) do
:erlang.set_cookie(node, cookie)
end
@@ -260,7 +261,6 @@ defmodule Node do
Returns the cookie if the node is alive, otherwise `:nocookie`.
"""
@spec get_cookie() :: atom
def get_cookie() do
:erlang.get_cookie()
end
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