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README.md

      1 <p align="center"><img src="https://raw.githubusercontent.com/facebook/zstd/dev/doc/images/zstd_logo86.png" alt="Zstandard"></p>
      2 
      3 __Zstandard__, or `zstd` as short version, is a fast lossless compression algorithm,
      4 targeting real-time compression scenarios at zlib-level and better compression ratios.
      5 It's backed by a very fast entropy stage, provided by [Huff0 and FSE library](https://github.com/Cyan4973/FiniteStateEntropy).
      6 
      7 Zstandard's format is stable and documented in [RFC8878](https://datatracker.ietf.org/doc/html/rfc8878). Multiple independent implementations are already available.
      8 This repository represents the reference implementation, provided as an open-source dual [BSD](LICENSE) OR [GPLv2](COPYING) licensed **C** library,
      9 and a command line utility producing and decoding `.zst`, `.gz`, `.xz` and `.lz4` files.
     10 Should your project require another programming language,
     11 a list of known ports and bindings is provided on [Zstandard homepage](https://facebook.github.io/zstd/#other-languages).
     12 
     13 **Development branch status:**
     14 
     15 [![Build Status][travisDevBadge]][travisLink]
     16 [![Build status][CircleDevBadge]][CircleLink]
     17 [![Build status][CirrusDevBadge]][CirrusLink]
     18 [![Fuzzing Status][OSSFuzzBadge]][OSSFuzzLink]
     19 
     20 [travisDevBadge]: https://api.travis-ci.com/facebook/zstd.svg?branch=dev "Continuous Integration test suite"
     21 [travisLink]: https://travis-ci.com/facebook/zstd
     22 [CircleDevBadge]: https://circleci.com/gh/facebook/zstd/tree/dev.svg?style=shield "Short test suite"
     23 [CircleLink]: https://circleci.com/gh/facebook/zstd
     24 [CirrusDevBadge]: https://api.cirrus-ci.com/github/facebook/zstd.svg?branch=dev
     25 [CirrusLink]: https://cirrus-ci.com/github/facebook/zstd
     26 [OSSFuzzBadge]: https://oss-fuzz-build-logs.storage.googleapis.com/badges/zstd.svg
     27 [OSSFuzzLink]: https://bugs.chromium.org/p/oss-fuzz/issues/list?sort=-opened&can=1&q=proj:zstd
     28 
     29 ## Benchmarks
     30 
     31 For reference, several fast compression algorithms were tested and compared
     32 on a desktop featuring a Core i7-9700K CPU @ 4.9GHz
     33 and running Ubuntu 20.04 (`Linux ubu20 5.15.0-101-generic`),
     34 using [lzbench], an open-source in-memory benchmark by @inikep
     35 compiled with [gcc] 9.4.0,
     36 on the [Silesia compression corpus].
     37 
     38 [lzbench]: https://github.com/inikep/lzbench
     39 [Silesia compression corpus]: https://sun.aei.polsl.pl//~sdeor/index.php?page=silesia
     40 [gcc]: https://gcc.gnu.org/
     41 
     42 | Compressor name         | Ratio | Compression| Decompress.|
     43 | ---------------         | ------| -----------| ---------- |
     44 | **zstd 1.5.6 -1**       | 2.887 |   510 MB/s |  1580 MB/s |
     45 | [zlib] 1.2.11 -1        | 2.743 |    95 MB/s |   400 MB/s |
     46 | brotli 1.0.9 -0         | 2.702 |   395 MB/s |   430 MB/s |
     47 | **zstd 1.5.6 --fast=1** | 2.437 |   545 MB/s |  1890 MB/s |
     48 | **zstd 1.5.6 --fast=3** | 2.239 |   650 MB/s |  2000 MB/s |
     49 | quicklz 1.5.0 -1        | 2.238 |   525 MB/s |   750 MB/s |
     50 | lzo1x 2.10 -1           | 2.106 |   650 MB/s |   825 MB/s |
     51 | [lz4] 1.9.4             | 2.101 |   700 MB/s |  4000 MB/s |
     52 | lzf 3.6 -1              | 2.077 |   420 MB/s |   830 MB/s |
     53 | snappy 1.1.9            | 2.073 |   530 MB/s |  1660 MB/s |
     54 
     55 [zlib]: https://www.zlib.net/
     56 [lz4]: https://lz4.github.io/lz4/
     57 
     58 The negative compression levels, specified with `--fast=#`,
     59 offer faster compression and decompression speed
     60 at the cost of compression ratio.
     61 
     62 Zstd can also offer stronger compression ratios at the cost of compression speed.
     63 Speed vs Compression trade-off is configurable by small increments.
     64 Decompression speed is preserved and remains roughly the same at all settings,
     65 a property shared by most LZ compression algorithms, such as [zlib] or lzma.
     66 
     67 The following tests were run
     68 on a server running Linux Debian (`Linux version 4.14.0-3-amd64`)
     69 with a Core i7-6700K CPU @ 4.0GHz,
     70 using [lzbench], an open-source in-memory benchmark by @inikep
     71 compiled with [gcc] 7.3.0,
     72 on the [Silesia compression corpus].
     73 
     74 Compression Speed vs Ratio | Decompression Speed
     75 ---------------------------|--------------------
     76 ![Compression Speed vs Ratio](doc/images/CSpeed2.png "Compression Speed vs Ratio") | ![Decompression Speed](doc/images/DSpeed3.png "Decompression Speed")
     77 
     78 A few other algorithms can produce higher compression ratios at slower speeds, falling outside of the graph.
     79 For a larger picture including slow modes, [click on this link](doc/images/DCspeed5.png).
     80 
     81 
     82 ## The case for Small Data compression
     83 
     84 Previous charts provide results applicable to typical file and stream scenarios (several MB). Small data comes with different perspectives.
     85 
     86 The smaller the amount of data to compress, the more difficult it is to compress. This problem is common to all compression algorithms, and reason is, compression algorithms learn from past data how to compress future data. But at the beginning of a new data set, there is no "past" to build upon.
     87 
     88 To solve this situation, Zstd offers a __training mode__, which can be used to tune the algorithm for a selected type of data.
     89 Training Zstandard is achieved by providing it with a few samples (one file per sample). The result of this training is stored in a file called "dictionary", which must be loaded before compression and decompression.
     90 Using this dictionary, the compression ratio achievable on small data improves dramatically.
     91 
     92 The following example uses the `github-users` [sample set](https://github.com/facebook/zstd/releases/tag/v1.1.3), created from [github public API](https://developer.github.com/v3/users/#get-all-users).
     93 It consists of roughly 10K records weighing about 1KB each.
     94 
     95 Compression Ratio | Compression Speed | Decompression Speed
     96 ------------------|-------------------|--------------------
     97 ![Compression Ratio](doc/images/dict-cr.png "Compression Ratio") | ![Compression Speed](doc/images/dict-cs.png "Compression Speed") | ![Decompression Speed](doc/images/dict-ds.png "Decompression Speed")
     98 
     99 
    100 These compression gains are achieved while simultaneously providing _faster_ compression and decompression speeds.
    101 
    102 Training works if there is some correlation in a family of small data samples. The more data-specific a dictionary is, the more efficient it is (there is no _universal dictionary_).
    103 Hence, deploying one dictionary per type of data will provide the greatest benefits.
    104 Dictionary gains are mostly effective in the first few KB. Then, the compression algorithm will gradually use previously decoded content to better compress the rest of the file.
    105 
    106 ### Dictionary compression How To:
    107 
    108 1. Create the dictionary
    109 
    110    `zstd --train FullPathToTrainingSet/* -o dictionaryName`
    111 
    112 2. Compress with dictionary
    113 
    114    `zstd -D dictionaryName FILE`
    115 
    116 3. Decompress with dictionary
    117 
    118    `zstd -D dictionaryName --decompress FILE.zst`
    119 
    120 
    121 ## Build instructions
    122 
    123 `make` is the officially maintained build system of this project.
    124 All other build systems are "compatible" and 3rd-party maintained,
    125 they may feature small differences in advanced options.
    126 When your system allows it, prefer using `make` to build `zstd` and `libzstd`.
    127 
    128 ### Makefile
    129 
    130 If your system is compatible with standard `make` (or `gmake`),
    131 invoking `make` in root directory will generate `zstd` cli in root directory.
    132 It will also create `libzstd` into `lib/`.
    133 
    134 Other available options include:
    135 - `make install` : create and install zstd cli, library and man pages
    136 - `make check` : create and run `zstd`, test its behavior on local platform
    137 
    138 The `Makefile` follows the [GNU Standard Makefile conventions](https://www.gnu.org/prep/standards/html_node/Makefile-Conventions.html),
    139 allowing staged install, standard flags, directory variables and command variables.
    140 
    141 For advanced use cases, specialized compilation flags which control binary generation
    142 are documented in [`lib/README.md`](lib/README.md#modular-build) for the `libzstd` library
    143 and in [`programs/README.md`](programs/README.md#compilation-variables) for the `zstd` CLI.
    144 
    145 ### cmake
    146 
    147 A `cmake` project generator is provided within `build/cmake`.
    148 It can generate Makefiles or other build scripts
    149 to create `zstd` binary, and `libzstd` dynamic and static libraries.
    150 
    151 By default, `CMAKE_BUILD_TYPE` is set to `Release`.
    152 
    153 #### Support for Fat (Universal2) Output
    154 
    155 `zstd` can be built and installed with support for both Apple Silicon (M1/M2) as well as Intel by using CMake's Universal2 support.
    156 To perform a Fat/Universal2 build and install use the following commands:
    157 
    158 ```bash
    159 cmake -B build-cmake-debug -S build/cmake -G Ninja -DCMAKE_OSX_ARCHITECTURES="x86_64;x86_64h;arm64"
    160 cd build-cmake-debug
    161 ninja
    162 sudo ninja install
    163 ```
    164 
    165 ### Meson
    166 
    167 A Meson project is provided within [`build/meson`](build/meson). Follow
    168 build instructions in that directory.
    169 
    170 You can also take a look at [`.travis.yml`](.travis.yml) file for an
    171 example about how Meson is used to build this project.
    172 
    173 Note that default build type is **release**.
    174 
    175 ### VCPKG
    176 You can build and install zstd [vcpkg](https://github.com/Microsoft/vcpkg/) dependency manager:
    177 
    178     git clone https://github.com/Microsoft/vcpkg.git
    179     cd vcpkg
    180     ./bootstrap-vcpkg.sh
    181     ./vcpkg integrate install
    182     ./vcpkg install zstd
    183 
    184 The zstd port in vcpkg is kept up to date by Microsoft team members and community contributors.
    185 If the version is out of date, please [create an issue or pull request](https://github.com/Microsoft/vcpkg) on the vcpkg repository.
    186 
    187 ### Conan
    188 
    189 You can install pre-built binaries for zstd or build it from source using [Conan](https://conan.io/). Use the following command:
    190 
    191 ```bash
    192 conan install --requires="zstd/[*]" --build=missing
    193 ```
    194 
    195 The zstd Conan recipe is kept up to date by Conan maintainers and community contributors.
    196 If the version is out of date, please [create an issue or pull request](https://github.com/conan-io/conan-center-index) on the ConanCenterIndex repository.
    197 
    198 ### Visual Studio (Windows)
    199 
    200 Going into `build` directory, you will find additional possibilities:
    201 - Projects for Visual Studio 2005, 2008 and 2010.
    202   + VS2010 project is compatible with VS2012, VS2013, VS2015 and VS2017.
    203 - Automated build scripts for Visual compiler by [@KrzysFR](https://github.com/KrzysFR), in `build/VS_scripts`,
    204   which will build `zstd` cli and `libzstd` library without any need to open Visual Studio solution.
    205 
    206 ### Buck
    207 
    208 You can build the zstd binary via buck by executing: `buck build programs:zstd` from the root of the repo.
    209 The output binary will be in `buck-out/gen/programs/`.
    210 
    211 ### Bazel
    212 
    213 You easily can integrate zstd into your Bazel project by using the module hosted on the [Bazel Central Repository](https://registry.bazel.build/modules/zstd).
    214 
    215 ## Testing
    216 
    217 You can run quick local smoke tests by running `make check`.
    218 If you can't use `make`, execute the `playTest.sh` script from the `src/tests` directory.
    219 Two env variables `$ZSTD_BIN` and `$DATAGEN_BIN` are needed for the test script to locate the `zstd` and `datagen` binary.
    220 For information on CI testing, please refer to `TESTING.md`.
    221 
    222 ## Status
    223 
    224 Zstandard is currently deployed within Facebook and many other large cloud infrastructures.
    225 It is run continuously to compress large amounts of data in multiple formats and use cases.
    226 Zstandard is considered safe for production environments.
    227 
    228 ## License
    229 
    230 Zstandard is dual-licensed under [BSD](LICENSE) OR [GPLv2](COPYING).
    231 
    232 ## Contributing
    233 
    234 The `dev` branch is the one where all contributions are merged before reaching `release`.
    235 If you plan to propose a patch, please commit into the `dev` branch, or its own feature branch.
    236 Direct commit to `release` are not permitted.
    237 For more information, please read [CONTRIBUTING](CONTRIBUTING.md).
    238