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FusionLearn (version 0.2.1)

Fusion Learning

Description

The fusion learning method uses a model selection algorithm to learn from multiple data sets across different experimental platforms through group penalization. The responses of interest may include a mix of discrete and continuous variables. The responses may share the same set of predictors, however, the models and parameters differ across different platforms. Integrating information from different data sets can enhance the power of model selection. Package is based on Xin Gao, Raymond J. Carroll (2017) .

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Version

Install

install.packages('FusionLearn')

Monthly Downloads

204

Version

0.2.1

License

GPL (>= 2)

Maintainer

Yuan Zhong

Last Published

April 24th, 2022

Functions in FusionLearn (0.2.1)

fusionbase

Fusion learning method for continuous responses
stockindex

Finance Data
FusionLearn-package

Fusion Learning
mockgene

Mock Gene Data
fusionbinary

Fusion learning algorithm for binary responses
fusionmixed

Fusion learning algorithm for mixed data