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r-lda

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Implements latent Dirichlet allocation (LDA) and related models. This includes (but is not limited to) sLDA, corrLDA, and the mixed-membership stochastic blockmodel. Inference for all of these models is implemented via a fast collapsed Gibbs sampler written in C. Utility functions for reading/writing data typically used in topic models, as well as tools for examining posterior distributions are also included.

Installation

To install this package, run one of the following:

Conda
$conda install conda-forge::r-lda

Usage Tracking

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Downloads (Last 6 months): 0

About

Summary

Implements latent Dirichlet allocation (LDA) and related models. This includes (but is not limited to) sLDA, corrLDA, and the mixed-membership stochastic blockmodel. Inference for all of these models is implemented via a fast collapsed Gibbs sampler written in C. Utility functions for reading/writing data typically used in topic models, as well as tools for examining posterior distributions are also included.

Last Updated

Apr 28, 2024 at 12:32

License

LGPL-2.1-or-later

Supported Platforms

win-64
macOS-64
linux-64