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doc: add documentation some ❤️
- add ToC - hide less relevant section under th #misc - update examples - clarify linguist sync practice Signed-off-by: Alexander Bezzubov <bzz@apache.org>
This commit is contained in:
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README.md
291
README.md
@ -2,51 +2,34 @@
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File programming language detector and toolbox to ignore binary or vendored files. *enry*, started as a port to _Go_ of the original [linguist](https://github.com/github/linguist) _Ruby_ library, that has an improved *2x performance*.
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* [Installation](#installation)
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* [Examples](#examples)
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* [CLI](#cli)
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* [Java bindings](#java-bindings)
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* [Python bindings](#python-bindings)
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* [Divergences from linguist](#divergences-from-linguist)
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* [Benchmarks](#benchmarks)
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* [Why Enry?](#why-enry)
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* [Development](#development)
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* [Sync with github/linguist upstream](#sync-with-githublinguist-upstream)
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* [Misc](#misc)
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* [Benchmark](#benchmark)
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* [Faster regexp engine (optional)](#faster-regexp-engine-optional)
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* [License](#license)
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Installation
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------------
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The recommended way to install enry is
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The recommended way to install enry is to either [download a release](https://github.com/src-d/enry/releases) or
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```
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go get github.com/src-d/enry/cmd/enry
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```
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To build enry's CLI you must run
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make build
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this will generate a binary in the project's root directory called `enry`. You can then move this binary to anywhere in your `PATH`.
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This project is now part of [source{d} Engine](https://sourced.tech/engine),
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which provides the simplest way to get started with a single command.
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Visit [sourced.tech/engine](https://sourced.tech/engine) for more information.
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### Faster regexp engine (optional)
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[Oniguruma](https://github.com/kkos/oniguruma) is CRuby's regular expression engine.
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It is very fast and performs better than the one built into Go runtime. *enry* supports swapping
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between those two engines thanks to [rubex](https://github.com/moovweb/rubex) project.
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The typical overall speedup from using Oniguruma is 1.5-2x. However, it requires CGo and the external shared library.
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On macOS with brew, it is
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```
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brew install oniguruma
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```
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On Ubuntu, it is
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```
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sudo apt install libonig-dev
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```
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To build enry with Oniguruma regexps use the `oniguruma` build tag
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```
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go get -v -t --tags oniguruma ./...
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```
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and then rebuild the project.
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Examples
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------------
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@ -92,105 +75,103 @@ You can use enry as a command,
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```bash
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$ enry --help
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enry v1.5.0 build: 10-02-2017_14_01_07 commit: 95ef0a6cf3, based on linguist commit: 37979b2
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enry, A simple (and faster) implementation of github/linguist
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usage: enry <path>
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enry [-json] [-breakdown] <path>
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enry [-json] [-breakdown]
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enry [-version]
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enry v2.0.0 build: 05-08-2019_20_40_35 commit: 6ccf0b6, based on linguist commit: e456098
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enry, A simple (and faster) implementation of github/linguist
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usage: enry [-mode=(file|line|byte)] [-prog] <path>
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enry [-mode=(file|line|byte)] [-prog] [-json] [-breakdown] <path>
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enry [-mode=(file|line|byte)] [-prog] [-json] [-breakdown]
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enry [-version]
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```
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and it'll return an output similar to *linguist*'s output,
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and on repository root, it'll return an output similar to *linguist*'s output,
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```bash
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$ enry
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55.56% Shell
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22.22% Ruby
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11.11% Gnuplot
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11.11% Go
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97.71% Go
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1.60% C
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0.31% Shell
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0.22% Java
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0.07% Ruby
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0.05% Makefile
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0.04% Scala
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0.01% Gnuplot
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```
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but not only the output; its flags are also the same as *linguist*'s ones,
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```bash
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$ enry --breakdown
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55.56% Shell
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22.22% Ruby
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11.11% Gnuplot
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11.11% Go
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97.71% Go
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1.60% C
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0.31% Shell
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0.22% Java
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0.07% Ruby
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0.05% Makefile
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0.04% Scala
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0.01% Gnuplot
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Gnuplot
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plot-histogram.gp
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Scala
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java/build.sbt
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java/project/plugins.sbt
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Ruby
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linguist-samples.rb
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linguist-total.rb
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Java
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java/src/main/java/tech/sourced/enry/Enry.java
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java/src/main/java/tech/sourced/enry/GoUtils.java
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java/src/main/java/tech/sourced/enry/Guess.java
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java/src/test/java/tech/sourced/enry/EnryTest.java
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Shell
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parse.sh
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plot-histogram.sh
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run-benchmark.sh
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run-slow-benchmark.sh
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run.sh
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Makefile
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Makefile
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java/Makefile
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Go
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parser/main.go
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benchmark_test.go
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```
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even the JSON flag,
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```bash
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$ enry --json
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{"Gnuplot":["plot-histogram.gp"],"Go":["parser/main.go"],"Ruby":["linguist-samples.rb","linguist-total.rb"],"Shell":["parse.sh","plot-histogram.sh","run-benchmark.sh","run-slow-benchmark.sh","run.sh"]}
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$ enry --json | jq .
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{
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"C": [
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"internal/tokenizer/flex/lex.linguist_yy.c",
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"internal/tokenizer/flex/lex.linguist_yy.h",
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"internal/tokenizer/flex/linguist.h",
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"python/_c_enry.c",
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"python/enry.c"
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],
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"Gnuplot": [
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"benchmarks/plot-histogram.gp"
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],
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"Go": [
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"benchmark_test.go",
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```
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Note that even if enry's CLI is compatible with linguist's, its main point is that **_enry doesn't need a git repository to work!_**
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Note that enry's CLI **_doesn't need a git repository to work_**, which is intentionally different from the linguist.
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Java bindings
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------------
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## Java bindings
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Generated Java bindings using a C-shared library and JNI are located under [`java`](https://github.com/src-d/enry/blob/master/java)
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Development
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------------
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Generated Java bindings using a C-shared library and JNI are available under [`java`](https://github.com/src-d/enry/blob/master/java) and published on Maven at [tech.sourced:enry-java](https://mvnrepository.com/artifact/tech.sourced/enry-java) for macOS and linux.
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*enry* re-uses parts of original [linguist](https://github.com/github/linguist) to generate internal data structures. In order to update to the latest upstream and generate all the necessary code you must run:
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git clone https://github.com/github/linguist.git .linguist
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# update commit in generator_test.go (to re-generate .gold fixtures)
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# https://github.com/src-d/enry/blob/13d3d66d37a87f23a013246a1b0678c9ee3d524b/internal/code-generator/generator/generator_test.go#L18
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go generate
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## Python bindings
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We update enry when changes are done in linguist's master branch on the following files:
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* [languages.yml](https://github.com/github/linguist/blob/master/lib/linguist/languages.yml)
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* [heuristics.yml](https://github.com/github/linguist/blob/master/lib/linguist/heuristics.yml)
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* [vendor.yml](https://github.com/github/linguist/blob/master/lib/linguist/vendor.yml)
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* [documentation.yml](https://github.com/github/linguist/blob/master/lib/linguist/documentation.yml)
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Currently we don't have any procedure established to automatically detect changes in the linguist project and regenerate the code.
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So we update the generated code as needed, without any specific criteria.
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If you want to update *enry* because of changes in linguist, you can run the *go
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generate* command and do a pull request that only contains the changes in
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generated files (those files in the subdirectory [data](https://github.com/src-d/enry/blob/master/data)).
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To run the tests,
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make test
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Generated Python bindings using a C-shared library and cffi are not available yet and are WIP under [src-d/enry#154](https://github.com/src-d/enry/issues/154).
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Divergences from linguist
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------------
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`enry` [CLI tool](#cli) does *not* require a full Git repository to be present in the filesystem in order to report languages.
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`enry` library is based on the data from `github/linguist` version **v7.2.0**.
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Using [linguist/samples](https://github.com/github/linguist/tree/master/samples)
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as a set for the tests, the following issues were found:
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As opposed to linguist, `enry` [CLI tool](#cli) does *not* require a full Git repository in the filesystem in order to report languages.
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* [Heuristics for ".es" extension](https://github.com/github/linguist/blob/e761f9b013e5b61161481fcb898b59721ee40e3d/lib/linguist/heuristics.yml#L103) in JavaScript could not be parsed, due to unsupported backreference in RE2 regexp engine
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Parsing [linguist/samples](https://github.com/github/linguist/tree/master/samples) next enry results are different from the linguist:
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* As of (Linguist v5.3.2)[https://github.com/github/linguist/releases/tag/v5.3.2] it is using [flex-based scanner in C for tokenization](https://github.com/github/linguist/pull/3846). Enry still uses [extract_token](https://github.com/github/linguist/pull/3846/files#diff-d5179df0b71620e3fac4535cd1368d15L60) regex-based algorithm. See [#193](https://github.com/src-d/enry/issues/193).
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* [Heuristics for ".es" extension](https://github.com/github/linguist/blob/e761f9b013e5b61161481fcb898b59721ee40e3d/lib/linguist/heuristics.yml#L103) in JavaScript could not be parsed, due to unsupported backreference in RE2 regexp engine.
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* As of [Linguist v5.3.2](https://github.com/github/linguist/releases/tag/v5.3.2) it is using [flex-based scanner in C for tokenization](https://github.com/github/linguist/pull/3846). Enry still uses [extract_token](https://github.com/github/linguist/pull/3846/files#diff-d5179df0b71620e3fac4535cd1368d15L60) regex-based algorithm. See [#193](https://github.com/src-d/enry/issues/193).
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* Bayesian classifier can't distinguish "SQL" from "PLpgSQL. See [#194](https://github.com/src-d/enry/issues/194).
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@ -203,7 +184,7 @@ as a set for the tests, the following issues were found:
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* `enry` CLI output does NOT exclude `.gitignore`ed files and git submodules, as linguist does
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In all the cases above that have an issue number - we plan to update enry to match Linguist behaviour.
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In all the cases above that have an issue number - we plan to update enry to match Linguist behavior.
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Benchmarks
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@ -215,19 +196,73 @@ We got these results:
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The histogram represents the number of files for which spent time in language
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detection was in the range of the time interval indicated in the x axis.
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The histogram shows the number of files detected (y-axis) per time interval bucket (x-axis). As one can see, most of the files were detected faster by enry.
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So you can see that most of the files were detected quicker in enry.
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We found few cases where enry turns slower than linguist due to
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Go regexp engine being slower than Ruby's, based on [oniguruma](https://github.com/kkos/oniguruma) library, written in C.
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We found some few cases where enry turns slower than linguist. This is due to
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Golang's regexp engine being slower than Ruby's, which uses the [oniguruma](https://github.com/kkos/oniguruma) library, written in C.
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You can find scripts and additional information (like software and hardware used
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and benchmarks' results per sample file) in [*benchmarks*](https://github.com/src-d/enry/blob/master/benchmarks) directory.
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See (instructions)[#faster-regexp-engine-optional] for running enry with oniguruma.
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### Benchmark Dependencies
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Why Enry?
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------------
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In the movie [My Fair Lady](https://en.wikipedia.org/wiki/My_Fair_Lady), [Professor Henry Higgins](http://www.imdb.com/character/ch0011719/?ref_=tt_cl_t2) is one of the main characters. Henry is a linguist and at the very beginning of the movie enjoys guessing the origin of people based on their accent.
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`Enry Iggins` is how [Eliza Doolittle](http://www.imdb.com/character/ch0011720/?ref_=tt_cl_t1), [pronounces](https://www.youtube.com/watch?v=pwNKyTktDIE) the name of the Professor during the first half of the movie.
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## Development
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To build enry's CLI run:
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make build
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this will generate a binary in the project's root directory called `enry`.
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To run the tests:
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make test
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### Sync with github/linguist upstream
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*enry* re-uses parts of the original [github/linguist](https://github.com/github/linguist) to generate internal data structures.
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In order to update to the latest release of linguist do:
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git clone https://github.com/github/linguist.git .linguist
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# put the new release's commit sha in the generator_test.go (to re-generate .gold test fixtures)
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# https://github.com/src-d/enry/blob/13d3d66d37a87f23a013246a1b0678c9ee3d524b/internal/code-generator/generator/generator_test.go#L18
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make code-generate
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To stay in sync, enry needs to be updated when a new release of the linguist includes changes to any of the following files:
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* [languages.yml](https://github.com/github/linguist/blob/master/lib/linguist/languages.yml)
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* [heuristics.yml](https://github.com/github/linguist/blob/master/lib/linguist/heuristics.yml)
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* [vendor.yml](https://github.com/github/linguist/blob/master/lib/linguist/vendor.yml)
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* [documentation.yml](https://github.com/github/linguist/blob/master/lib/linguist/documentation.yml)
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There is no automation for detecting the changes in the linguist project, so this process above has to be done manually from time to time.
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When submitting a pull request syncing up to a new release, please make sure it only contains the changes in
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the generated files (in [data](https://github.com/src-d/enry/blob/master/data) subdirectory).
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Separating all the necessary "manual" code changes to a different PR that includes some background description and an update to the documentation on ["divergences from linguist"](##divergences-from-linguist) is very much appreciated as it simplifies the maintenance (review/release notes/etc).
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## Misc
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<details>
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### Benchmark
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All benchmark scripts are in [*benchmarks*](https://github.com/src-d/enry/blob/master/benchmarks) directory.
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#### Dependencies
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As benchmarks depend on Ruby and Github-Linguist gem make sure you have:
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- Ruby (e.g using [`rbenv`](https://github.com/rbenv/rbenv)), [`bundler`](https://bundler.io/) installed
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- Docker
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@ -236,16 +271,7 @@ As benchmarks depend on Ruby and Github-Linguist gem make sure you have:
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- Install it `gem install --no-rdoc --no-ri --local .linguist/github-linguist-*.gem`
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### How to reproduce current results
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If you want to reproduce the same benchmarks as reported above:
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- Make sure all [dependencies](#benchmark-dependencies) are installed
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- Install [gnuplot](http://gnuplot.info) (in order to plot the histogram)
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- Run `ENRY_TEST_REPO="$PWD/.linguist" benchmarks/run.sh` (takes ~15h)
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It will run the benchmarks for enry and linguist, parse the output, create csv files and plot the histogram. This takes some time.
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### Quick
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#### Quick benchmark
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To run quicker benchmarks you can either:
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make benchmarks
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@ -257,12 +283,41 @@ to get average times for the main detection function and strategies for the whol
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if you want to see measures per sample file.
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Why Enry?
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------------
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#### Full benchmark
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If you want to reproduce the same benchmarks as reported above:
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- Make sure all [dependencies](#benchmark-dependencies) are installed
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- Install [gnuplot](http://gnuplot.info) (in order to plot the histogram)
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- Run `ENRY_TEST_REPO="$PWD/.linguist" benchmarks/run.sh` (takes ~15h)
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In the movie [My Fair Lady](https://en.wikipedia.org/wiki/My_Fair_Lady), [Professor Henry Higgins](http://www.imdb.com/character/ch0011719/?ref_=tt_cl_t2) is one of the main characters. Henry is a linguist and at the very beginning of the movie enjoys guessing the origin of people based on their accent.
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It will run the benchmarks for enry and linguist, parse the output, create csv files and plot the histogram.
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`Enry Iggins` is how [Eliza Doolittle](http://www.imdb.com/character/ch0011720/?ref_=tt_cl_t1), [pronounces](https://www.youtube.com/watch?v=pwNKyTktDIE) the name of the Professor during the first half of the movie.
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### Faster regexp engine (optional)
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[Oniguruma](https://github.com/kkos/oniguruma) is CRuby's regular expression engine.
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It is very fast and performs better than the one built into Go runtime. *enry* supports swapping
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between those two engines thanks to [rubex](https://github.com/moovweb/rubex) project.
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The typical overall speedup from using Oniguruma is 1.5-2x. However, it requires CGo and the external shared library.
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On macOS with brew, it is
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```
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brew install oniguruma
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```
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On Ubuntu, it is
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```
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sudo apt install libonig-dev
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```
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To build enry with Oniguruma regexps use the `oniguruma` build tag
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```
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go get -v -t --tags oniguruma ./...
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```
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and then rebuild the project.
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</details>
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License
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