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Ordered homogeneity pursuit lasso (OHPL) algorithm for group variable selection proposed in Lin et al. (2017) <DOI:10.1016/j.chemolab.2017.07.004>. The OHPL method exploits the homogeneity structure in high-dimensional data and enjoys the grouping effect to select groups of important variables automatically. This feature makes it particularly useful for high-dimensional datasets with strongly correlated variables, such as spectroscopic data.

Type Size Name Uploaded Downloads Labels
conda 1000.6 kB | noarch/r-ohpl-1.4-r43h142f84f_0.tar.bz2  10 months and 2 days ago 15 main
conda 999.1 kB | noarch/r-ohpl-1.4-r42h142f84f_0.tar.bz2  2 years and 4 months ago 46 main
conda 1011.1 kB | noarch/r-ohpl-1.4-r36h6115d3f_0.tar.bz2  4 years and 8 months ago 115 main

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