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r / packages / r-sparsestep

Implements the SparseStep model for solving regression problems with a sparsity constraint on the parameters. The SparseStep regression model was proposed in Van den Burg, Groenen, and Alfons (2017) <arXiv:1701.06967>. In the model, a regularization term is added to the regression problem which approximates the counting norm of the parameters. By iteratively improving the approximation a sparse solution to the regression problem can be obtained. In this package both the standard SparseStep algorithm is implemented as well as a path algorithm which uses golden section search to determine solutions with different values for the regularization parameter.

Type Size Name Uploaded Downloads Labels
conda 60.7 kB | noarch/r-sparsestep-1.0.1-r43h142f84f_0.tar.bz2  1 year and 1 month ago 18 main
conda 59.9 kB | noarch/r-sparsestep-1.0.1-r42h142f84f_0.tar.bz2  2 years and 7 months ago 47 main
conda 59.4 kB | noarch/r-sparsestep-1.0.0-r36h6115d3f_0.tar.bz2  4 years and 11 months ago 123 main

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