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We propose to use sparse regression model to achieve variable selection while accounting for graph-constraints among coefficients. Different linear combination of a sparsity penalty(L1) and a smoothness(MCP) penalty has been used, which induces both sparsity of the solution and certain smoothness on the linear coefficients.

Type Size Name Uploaded Downloads Labels
conda 194.4 kB | win-64/r-glmgraph-1.0.3-r36h796a38f_0.tar.bz2  5 years and 4 months ago 0 main
conda 183.3 kB | osx-64/r-glmgraph-1.0.3-r36h466af19_0.tar.bz2  5 years and 4 months ago 0 main
conda 195.5 kB | linux-64/r-glmgraph-1.0.3-r36h29659fb_0.tar.bz2  5 years and 4 months ago 0 main

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