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r / packages / r-mvmise

Offers a general framework of multivariate mixed-effects models for the joint analysis of multiple correlated outcomes with clustered data structures and potential missingness proposed by Wang et al. (2018) <doi:10.1093/biostatistics/kxy022>. The missingness of outcome values may depend on the values themselves (missing not at random and non-ignorable), or may depend on only the covariates (missing at random and ignorable), or both. This package provides functions for two models: 1) mvMISE_b() allows correlated outcome-specific random intercepts with a factor-analytic structure, and 2) mvMISE_e() allows the correlated outcome-specific error terms with a graphical lasso penalty on the error precision matrix. Both functions are motivated by the multivariate data analysis on data with clustered structures from labelling-based quantitative proteomic studies. These models and functions can also be applied to univariate and multivariate analyses of clustered data with balanced or unbalanced design and no missingness.

Type Size Name Uploaded Downloads Labels
conda 84.8 kB | noarch/r-mvmise-1.0-r43h142f84f_0.tar.bz2  10 months and 2 days ago 15 main
conda 84.3 kB | noarch/r-mvmise-1.0-r42h142f84f_0.tar.bz2  2 years and 4 months ago 46 main
conda 84.5 kB | noarch/r-mvmise-1.0-r36h6115d3f_0.tar.bz2  4 years and 8 months ago 119 main

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