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MultiRFM

High-dimensional multi-study robust factor model

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To robustly extract meaningful features from data derived from multiple heterogeneous sources, we introduce a high-dimensional multi-study robust factor model, called MultiRFM, which learns latent features and accounts for the heterogeneity among sources.

Installation

"MultiRFM" depends on the 'Rcpp' and 'RcppArmadillo' package, which requires appropriate setup of computer. For the users that have set up system properly for compiling C++ files, the following installation command will work.


### Install from CRAN
install.packages("MultiRFM")

### Install from github
if (!require("remotes", quietly = TRUE))
    install.packages("remotes")
remotes::install_github("feiyoung/MultiRFM")

Usage

For usage examples and guided walkthroughs, check the vignettes directory of the repo.

Simulated codes

For the codes in simulation study, check the simuCodes directory of the repo.

News

MultiRFM version 1.1 released! (2024-12-11)

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Version

Install

install.packages('MultiRFM')

Version

1.1.0

License

GPL-3

Issues

Pull Requests

Stars

Forks

Maintainer

Wei Liu

Last Published

December 3rd, 2025

Functions in MultiRFM (1.1.0)

MultiRFM

Fit the high-dimensional multi-study robust factor model
selectFac.MultiRFM

Select the number of factors
gendata_simu_multi

Generate Simulated Multi-Study Factor Analysis Data