mmiCATs: Cluster Adjusted t Statistic Applications
Simulation results detailed in Esarey and Menger (2019) <doi:10.1017/psrm.2017.42>
    demonstrate that cluster adjusted t statistics (CATs) are an effective method
    for correcting standard errors in scenarios with a small number of clusters.
    The 'mmiCATs' package offers a suite of tools for working with CATs. The
    mmiCATs() function initiates a 'shiny' web application, facilitating
    the analysis of data utilizing CATs, as implemented in the cluster.im.glm()
    function from the 'clusterSEs' package. Additionally, the pwr_func_lmer()
    function is designed to simplify the process of conducting simulations to
    compare mixed effects models with CATs models. For educational purposes, the
    CloseCATs() function launches a 'shiny' application card game, aimed at enhancing
    users' understanding of the conditions under which CATs should be preferred
    over random intercept models.
| Version: | 0.2.0 | 
| Imports: | broom, broom.mixed, clusterSEs, DT, lmerTest, MASS, mmcards, pool, robust, robustbase, RPostgres, shiny, shinythemes | 
| Suggests: | testthat (≥ 3.0.0) | 
| Published: | 2024-08-26 | 
| DOI: | 10.32614/CRAN.package.mmiCATs | 
| Author: | Mackson Ncube [aut, cre],
  mightymetrika, LLC [cph, fnd] | 
| Maintainer: | Mackson Ncube  <macksonncube.stats at gmail.com> | 
| BugReports: | https://github.com/mightymetrika/mmiCATs/issues | 
| License: | MIT + file LICENSE | 
| URL: | https://github.com/mightymetrika/mmiCATs | 
| NeedsCompilation: | no | 
| Materials: | README | 
| CRAN checks: | mmiCATs results | 
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