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tlverse
tmle3:The Extensible TMLE Framework
A general framework supporting the implementation of targeted maximum likelihood estimators (TMLEs) of a diverse range of statistical target parameters through a unified interface. The goal is that the exposed framework be as general as the mathematical framework upon which it draws.
Maintained by Jeremy Coyle. Last updated 5 months ago.
causal-inferencemachine-learningtargeted-learningvariable-importance
38 stars 7.91 score 286 scripts 5 dependentsr-forge
distrMod:Object Oriented Implementation of Probability Models
Implements S4 classes for probability models based on packages 'distr' and 'distrEx'.
Maintained by Peter Ruckdeschel. Last updated 3 months ago.
6.60 score 139 scripts 6 dependentsrapler
dst:Using the Theory of Belief Functions
Using the Theory of Belief Functions for evidence calculus. Basic probability assignments, or mass functions, can be defined on the subsets of a set of possible values and combined. A mass function can be extended to a larger frame. Marginalization, i.e. reduction to a smaller frame can also be done. These features can be combined to analyze small belief networks and take into account situations where information cannot be satisfactorily described by probability distributions.
Maintained by Peiyuan Zhu. Last updated 3 days ago.
6 stars 5.98 score 126 scriptsqile0317
FastUtils:Fast, Readable Utility Functions
A wide variety of tools for general data analysis, wrangling, spelling, statistics, visualizations, package development, and more. All functions have vectorized implementations whenever possible. Exported names are designed to be readable, with longer names possessing short aliases.
Maintained by Qile Yang. Last updated 4 months ago.
scientific-computingutilitiesutilitycpp
2 stars 4.95 score 2 scriptsjucheng1992
ctmle:Collaborative Targeted Maximum Likelihood Estimation
Implements the general template for collaborative targeted maximum likelihood estimation. It also provides several commonly used C-TMLE instantiation, like the vanilla/scalable variable-selection C-TMLE (Ju et al. (2017) <doi:10.1177/0962280217729845>) and the glmnet-C-TMLE algorithm (Ju et al. (2017) <arXiv:1706.10029>).
Maintained by Cheng Ju. Last updated 5 years ago.
causal-inferencemachine-learningstatisticstmle
5 stars 4.83 score 27 scripts