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This is a non-parametric method for joint adaptive mean-variance regularization and variance stabilization of high-dimensional data. It is suited for handling difficult problems posed by high-dimensional multivariate datasets (p >> n paradigm). Among those are that the variance is often a function of the mean, variable-specific estimators of variances are not reliable, and tests statistics have low powers due to a lack of degrees of freedom. Key features include: (i) Normalization and/or variance stabilization of the data, (ii) Computation of mean-variance-regularized t-statistics (F-statistics to follow), (iii) Generation of diverse diagnostic plots, (iv) Computationally efficient implementation using C/C++ interfacing and an option for parallel computing to enjoy a faster and easier experience in the R environment.

Type Size Name Uploaded Downloads Labels
conda 690.4 kB | linux-64/r-mvr-1.33.0-r351h29659fb_1.tar.bz2  6 years and 13 days ago 272 main gcc7
conda 689.9 kB | osx-64/r-mvr-1.33.0-r351h466af19_1.tar.bz2  6 years and 19 days ago 71 main gcc7
conda 689.9 kB | linux-64/r-mvr-1.33.0-r351h9d2a408_0.tar.bz2  6 years and 2 months ago 318 main cf201901
conda 648.3 kB | linux-64/r-mvr-1.33.0-r341h9d2a408_0.tar.bz2  6 years and 2 months ago 291 main cf201901
conda 688.3 kB | osx-64/r-mvr-1.33.0-r351h9d2a408_0.tar.bz2  6 years and 2 months ago 4237 main cf201901
conda 647.3 kB | osx-64/r-mvr-1.33.0-r341h9d2a408_0.tar.bz2  6 years and 2 months ago 69 main cf201901

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