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SSLfmm: Semi-Supervised Learning with Mixed Missingness in Finite Mixture Models

Semi-supervised Gaussian finite mixture models for partially labelled data under complete-case, missing completely at random (MCAR), entropy-dependent missing at random (MAR), and mixed MCAR/MAR label-missingness formulations. For the mixed formulation, the source of a missing label may be observed or latent. The package supports equal and component-specific covariance matrices, model fitting, simulation, initialization, prediction, classification performance assessment, and entropy-based diagnostics. A semi-synthetic Blood Transfusion data set is included to illustrate the applied workflow.

Version: 0.2.0
Depends: R (≥ 3.6.0)
Imports: graphics, stats
Suggests: testthat (≥ 3.0.0)
Published: 2026-08-20
DOI: 10.32614/CRAN.package.SSLfmm
Author: Geoffrey J. McLachlan ORCID iD [aut], Jinran Wu ORCID iD [aut, cre]
Maintainer: Jinran Wu <jinran.wu at uq.edu.au>
License: GPL-3
NeedsCompilation: no
Materials: README
CRAN checks: SSLfmm results

Documentation:

Reference manual: SSLfmm.html , SSLfmm.pdf

Downloads:

Package source: SSLfmm_0.2.0.tar.gz
Windows binaries: r-devel: SSLfmm_0.2.0.zip, r-release: SSLfmm_0.2.0.zip, r-oldrel: SSLfmm_0.2.0.zip
macOS binaries: r-release (arm64): SSLfmm_0.2.0.tgz, r-oldrel (arm64): SSLfmm_0.2.0.tgz, r-release (x86_64): SSLfmm_0.2.0.tgz, r-oldrel (x86_64): SSLfmm_0.2.0.tgz
Old sources: SSLfmm archive

Linking:

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These binaries (installable software) and packages are in development.
They may not be fully stable and should be used with caution. We make no claims about them.
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