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The fast cross-validation via sequential testing (CVST) procedure is an improved cross-validation procedure which uses non-parametric testing coupled with sequential analysis to determine the best parameter set on linearly increasing subsets of the data. By eliminating under-performing candidates quickly and keeping promising candidates as long as possible, the method speeds up the computation while preserving the capability of a full cross-validation. Additionally to the CVST the package contains an implementation of the ordinary k-fold cross-validation with a flexible and powerful set of helper objects and methods to handle the overall model selection process. The implementations of the Cochran's Q test with permutations and the sequential testing framework of Wald are generic and can therefore also be used in other contexts.

Type Size Name Uploaded Downloads Labels
conda 89.7 kB | zos-z/r-cvst-0.2_2-r352_3.tar.bz2  5 years and 6 months ago 1 r-extras
conda 89.5 kB | zos-z/r-cvst-0.2_2-r352_2.tar.bz2  5 years and 8 months ago 1 test
conda 89.5 kB | zos-z/r-cvst-0.2_2-r352_1.tar.bz2  5 years and 8 months ago 1 test
conda 71.6 kB | zos-z/r-cvst-0.2_2-r3.4.3_0.tar.bz2  6 years and 1 month ago 1 r-lang

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