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mult.latent.reg (version 0.1.9)

Regression and Clustering in Multivariate Response Scenarios

Description

Fitting multivariate response models with random effects on one or two levels; whereby the (one-dimensional) random effect represents a latent variable approximating the multivariate space of outcomes, after possible adjustment for covariates. The method is particularly useful for multivariate, highly correlated outcome variables with unobserved heterogeneities. Applications include regression with multivariate responses, as well as multivariate clustering or ranking problems. See Zhang and Einbeck (2024) .

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Version

Install

install.packages('mult.latent.reg')

Monthly Downloads

542

Version

0.1.9

License

GPL-3

Maintainer

Yingjuan Zhang Developer

Last Published

September 6th, 2024

Functions in mult.latent.reg (0.1.9)

IALS_data

International Adult Literacy Survey (IALS) for 13 countries
{mult.latent.reg}

Regression and Clustering in Multivariate Response Scenarios
mult.reg_2level

Selecting the best results for multivariate two level model
mult.reg_1level

Selecting the best results for multivariate one level model
start_em

Starting values for parameters
mult.em_1level

EM algorithm for multivariate one level model with covariates
mult.em_2level

EM algorithm for multivariate two level model with covariates
fetal_covid_data

A set of fetal movements data collected before and during the Covid-19 pandemic
twins_data

A set of fetal movements data in twins.
trading_data

A set of import and export data in 44 countries.