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Two partially supervised mixture modeling methods: soft-label and belief-based modeling are implemented. For completeness, we equipped the package also with the functionality of unsupervised, semi- and fully supervised mixture modeling. The package can be applied also to selection of the best-fitting from a set of models with different component numbers or constraints on their structures. For detailed introduction see: Przemyslaw Biecek, Ewa Szczurek, Martin Vingron, Jerzy Tiuryn (2012), The R Package bgmm: Mixture Modeling with Uncertain Knowledge, Journal of Statistical Software <doi:10.18637/jss.v047.i03>.

copied from cf-staging / r-bgmm

Installers

Info: This package contains files in non-standard labels.
  • noarch v1.8.5
  • win-64 v1.8.3
  • linux-64 v1.8.3
  • osx-64 v1.8.3

conda install

To install this package run one of the following:
conda install conda-forge::r-bgmm
conda install conda-forge/label/cf201901::r-bgmm
conda install conda-forge/label/cf202003::r-bgmm
conda install conda-forge/label/gcc7::r-bgmm

Description


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