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AmazaspShumik avatar

AmazaspShumik/sklearn-bayes

0
View on GitHub↗
524 stars·117 forks·Jupyter Notebook·MIT·7 views

Sklearn Bayes

Python package for Bayesian Machine Learning with scikit-learn API

Features

  • General Machine Learning - Bayesian machine learning models for scikit-learn.
  • Machine Learning Frameworks - Bayesian machine learning models for scikit-learn.
  • Machine Learning Packages - Bayesian machine learning models for scikit-learn.
  • Probabilistic Modeling - Bayesian machine learning tools with a scikit-learn API.

Star history

Star history chart for amazaspshumik/sklearn-bayesStar history chart for amazaspshumik/sklearn-bayes

How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Projects sharing features with Sklearn Bayes

These projects share indexed features with Sklearn Bayes. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • teamhg-memex/sklearn-crfsuiteTeamHG-Memex avatar

    TeamHG-Memex/sklearn-crfsuite

    436View on GitHub↗

    scikit-learn inspired API for CRFsuite

    Python
    View on GitHub↗436
  • csinva/imodelscsinva avatar

    csinva/imodels

    1,592View on GitHub↗

    Interpretable ML package 🔍 for concise, transparent, and accurate predictive modeling (sklearn-compatible).

    Jupyter Notebook
    View on GitHub↗1,592
  • aksnzhy/xlearnaksnzhy avatar

    aksnzhy/xlearn

    3,095View on GitHub↗

    High performance, easy-to-use, and scalable machine learning (ML) package, including linear model (LR), factorization machines (FM), and field-aware factorization machines (FFM) for Python and CLI interface.

    C++
    View on GitHub↗3,095
  • christophm/rulefitchristophM avatar

    christophM/rulefit

    446View on GitHub↗

    Python implementation of the rulefit algorithm

    Python
    View on GitHub↗446
Compare all 30 related projects→

Frequently asked questions

What does amazaspshumik/sklearn-bayes do?

Python package for Bayesian Machine Learning with scikit-learn API

What are the main features of amazaspshumik/sklearn-bayes?

The main features of amazaspshumik/sklearn-bayes are: General Machine Learning, Machine Learning Frameworks, Machine Learning Packages, Probabilistic Modeling.

Which projects share features with amazaspshumik/sklearn-bayes?

Projects with overlapping indexed features include: teamhg-memex/sklearn-crfsuite — scikit-learn inspired API for CRFsuite. davisking/dlib — dlib is a C++ machine learning toolkit and data analysis framework. It provides a collection of algorithms and… aksnzhy/xlearn — High performance, easy-to-use, and scalable machine learning (ML) package, including linear model (LR), factorization… christophm/rulefit — Python implementation of the rulefit algorithm. danielhanchen/hyperlearn — 2-2000x faster ML algos, 50% less memory usage, works on all hardware - new and old. csinva/imodels — Interpretable ML package 🔍 for concise, transparent, and accurate predictive modeling (sklearn-compatible).