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DBHC: Sequence Clustering with Discrete-Output HMMs

Provides an implementation of a mixture of hidden Markov models (HMMs) for discrete sequence data in the Discrete Bayesian HMM Clustering (DBHC) algorithm. The DBHC algorithm is an HMM Clustering algorithm that finds a mixture of discrete-output HMMs while using heuristics based on Bayesian Information Criterion (BIC) to search for the optimal number of HMM states and the optimal number of clusters.

Version:0.0.3
Imports:seqHMM (≥ 1.0.8),TraMineR (≥ 2.0-7),reshape2 (≥ 1.2.1),ggplot2 (≥ 2.2.1), methods (≥ 4.2.2)
Suggests:testthat (≥ 3.0.0)
Published:2022-12-22
DOI:10.32614/CRAN.package.DBHC
Author:Gabriel Budel [aut, cre], Flavius Frasincar [aut]
Maintainer:Gabriel Budel <gabysp_budel at hotmail.com>
BugReports:https://github.com/gabybudel/DBHC/issues
License:GPL (≥ 3)
URL:https://github.com/gabybudel/DBHC
NeedsCompilation:no
Materials:README,NEWS
CRAN checks:DBHC results

Documentation:

Reference manual:DBHC.html ,DBHC.pdf

Downloads:

Package source: DBHC_0.0.3.tar.gz
Windows binaries: r-devel:DBHC_0.0.3.zip, r-release:DBHC_0.0.3.zip, r-oldrel:DBHC_0.0.3.zip
macOS binaries: r-release (arm64):DBHC_0.0.3.tgz, r-oldrel (arm64):DBHC_0.0.3.tgz, r-release (x86_64):DBHC_0.0.3.tgz, r-oldrel (x86_64):DBHC_0.0.3.tgz
Old sources: DBHC archive

Linking:

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