Result for 027219E019285DB4457C8FD87BE892780C71A85F

Query result

Key Value
FileName./usr/share/doc/rapidjson/html/zh-cn/search/functions_f.html
FileSize1020
MD50E3BC65B07C657EB12D8F95E43E19FB1
SHA-1027219E019285DB4457C8FD87BE892780C71A85F
SHA-256C9F4C7C06266B5329C19157B21F09626D2E8BAF74A3587DA0AE0A7D89F7529AD
SSDEEP24:hMNmArhJMrVvPwV4NOflXWBTrO45oRRpys+RRNysxX8ra4IB4X:ImwG1nNOlLHtys+xysxX8rtfX
TLSHT15B11CE176C06CA15846245D0F0F5EB1EBCB4DE34A70EC89818EC91D7E1C2FD8CC19BAA
hashlookup:parent-total3
hashlookup:trust65

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Parents (Total: 3)

The searched file hash is included in 3 parent files which include package known and seen by metalookup. A sample is included below:

Key Value
MD5B80468FFB512EA024E91AA87C852DA42
PackageArchnoarch
PackageDescriptionThis package contains the documentation-files for rapidjson.
PackageMaintainerFedora Project
PackageNamerapidjson-doc
PackageRelease1.fc24
PackageVersion1.0.2
SHA-184F2B3C9DE427853113EA4716076E413A88AD940
SHA-2567E8E89B8993C076BE9328951D8D0C5209B8086F3865098F179CCF9F60AE0B2F1
Key Value
MD568277CCE9FF7ABC02535FF7B1EF7DDA4
PackageArchaarch64
PackageDescriptionThis package contains the documentation files for shogun in Chinese language. The Shogun Machine learning toolbox provides a wide range of unified and efficient Machine Learning (ML) methods. The toolbox seamlessly allows to easily combine multiple data representations, algorithm classes, and general purpose tools. This enables both rapid prototyping of data pipelines and extensibility in terms of new algorithms. We combine modern software architecture in C++ with both efficient low-level computing back-ends and cutting edge algorithm implementations to solve large-scale Machine Learning problems (yet) on single machines. One of Shogun's most exciting features is that you can use the toolbox through a unified interface from C++, Python(3), Octave, R, Java, Lua, etc. This not just means that we are independent of trends in computing languages, but it also lets you use Shogun as a vehicle to expose your algorithm to multiple communities. We use SWIG to enable bidirectional communication between C++ and target languages. Shogun runs under Linux/Unix, MacOS, Windows. Originally focusing on large-scale kernel methods and bioinformatics (for a list of scientific papers mentioning Shogun, see here), the toolbox saw massive extensions to other fields in recent years. It now offers features that span the whole space of Machine Learning methods, including many classical methods in classification, regression, dimensionality reduction, clustering, but also more advanced algorithm classes such as metric, multi-task, structured output, and online learning, as well as feature hashing, ensemble methods, and optimization, just to name a few. Shogun in addition contains a number of exclusive state-of-the art algorithms such as a wealth of efficient SVM implementations, Multiple Kernel Learning, kernel hypothesis testing, Krylov methods, etc. All algorithms are supported by a collection of general purpose methods for evaluation, parameter tuning, preprocessing, serialization & I/O, etc; the resulting combinatorial possibilities are huge. The wealth of ML open-source software allows us to offer bindings to other sophisticated libraries including: LibSVM, LibLinear, LibOCAS, libqp, VowpalWabbit, Tapkee, SLEP, GPML and more. Shogun got initiated in 1999 by Soeren Sonnenburg and Gunnar Raetsch (that's where the name ShoGun originates from). It is now developed by a larger team of authors, and would not have been possible without the patches and bug reports by various people. See contributions for a detailed list. Statistics on Shogun's development activity can be found on ohloh.
PackageMaintainerFedora Project
PackageNameshogun-doc-cn
PackageRelease2.fc24
PackageVersion4.1.0
SHA-10C722C9D509FB5995E7AE6A11D3898D9B4860106
SHA-2560B701828487E708F71CC4D7BC5BD5ED345229AD2E9F59AC11BF5016B539F4CD7
Key Value
MD5529728F42C51DEF2C477BAE9B5690551
PackageArchnoarch
PackageDescriptionThis package contains the documentation-files for rapidjson.
PackageMaintainerFedora Project
PackageNamerapidjson-doc
PackageRelease1.fc24
PackageVersion1.0.2
SHA-1C86881DA8E789655639E626B8545C5C1C2E4EDF8
SHA-2566699F1AC6A9753615E606EC85A58F08A5DC8952E54411555CDDFDF7E13A8A198