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Implements convex regression with interpretable sharp partitions (CRISP), which considers the problem of predicting an outcome variable on the basis of two covariates, using an interpretable yet non-additive model. CRISP partitions the covariate space into blocks in a data-adaptive way, and fits a mean model within each block. Unlike other partitioning methods, CRISP is fit using a non-greedy approach by solving a convex optimization problem, resulting in low-variance fits. More details are provided in Petersen, A., Simon, N., and Witten, D. (2016). Convex Regression with Interpretable Sharp Partitions. Journal of Machine Learning Research, 17(94): 1-31 <http://jmlr.org/papers/volume17/15-344/15-344.pdf>.

Type Size Name Uploaded Downloads Labels
conda 107.5 kB | noarch/r-crisp-1.0.0-r43h142f84f_0.tar.bz2  1 year and 1 month ago 21 main
conda 106.9 kB | noarch/r-crisp-1.0.0-r42h142f84f_0.tar.bz2  2 years and 7 months ago 54 main
conda 107.8 kB | noarch/r-crisp-1.0.0-r36h6115d3f_0.tar.bz2  4 years and 11 months ago 120 main

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