python-pomegranate 0.12.0+dfsg-1 source package in Ubuntu
Changelog
python-pomegranate (0.12.0+dfsg-1) unstable; urgency=medium [ Andreas Tille ] * Team upload. * Properly renamed version due to removal of autogenerated files (+dfsg suffix) [ Michael R. Crusoe ] * Switch to downloading from GitHub * Add Testsuite: autopkgtest-pkg-python * Mark the -doc package as Multi-Arch: foreign * Added build-dep on python3-pandas for the tests -- Michael R. Crusoe <email address hidden> Thu, 02 Jan 2020 08:57:53 +0100
Upload details
- Uploaded by:
- Debian Python Modules Team
- Uploaded to:
- Sid
- Original maintainer:
- Debian Python Modules Team
- Architectures:
- any all
- Section:
- misc
- Urgency:
- Medium Urgency
See full publishing history Publishing
Series | Published | Component | Section |
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Downloads
File | Size | SHA-256 Checksum |
---|---|---|
python-pomegranate_0.12.0+dfsg-1.dsc | 2.5 KiB | 71ef75ea904bb4fb433cfaa96076e51bf09c608048b9322e847c869bcd4d5d81 |
python-pomegranate_0.12.0+dfsg.orig.tar.xz | 13.1 MiB | a1a00b01b5f782b43165163b02f88ef23c697599163af4c09f0afbf56c3cc9a3 |
python-pomegranate_0.12.0+dfsg-1.debian.tar.xz | 3.0 KiB | 09f92bb8c300ecd0426c2c6ad7cf2b23276949aa43c8c3c3373a3ed7957c6fc1 |
Available diffs
- diff from 0.11.1+dfsg2-1 to 0.12.0+dfsg-1 (810.4 KiB)
No changes file available.
Binary packages built by this source
- python-pomegranate-doc: documentation accompanying probabilistic modelling library
pomegranate is a package for probabilistic models in Python that is
implemented in cython for speed. It's focus is on merging the easy-to-use
scikit-learn API with the modularity that comes with probabilistic
modeling to allow users to specify complicated models without needing to
worry about implementation details. The models are built from the ground
up with big data processing in mind and so natively support features
like out-of-core learning and parallelism.
.
This is the common documentation package.
- python3-pomegranate: Fast, flexible and easy to use probabilistic modelling
pomegranate is a package for probabilistic models in Python that is
implemented in cython for speed. It's focus is on merging the easy-to-use
scikit-learn API with the modularity that comes with probabilistic
modeling to allow users to specify complicated models without needing to
worry about implementation details. The models are built from the ground
up with big data processing in mind and so natively support features
like out-of-core learning and parallelism.
- python3-pomegranate-dbgsym: debug symbols for python3-pomegranate