depower: Power Analysis for Differential Expression Studies
Provides a convenient framework to simulate, test, power, and visualize 
    data for differential expression studies with lognormal or negative binomial 
    outcomes. Supported designs are two-sample comparisons of independent or 
    dependent outcomes. Power may be summarized in the context of controlling the 
    per-family error rate or family-wise error rate. Negative binomial methods are 
    described in Yu, Fernandez, and Brock (2017) <doi:10.1186/s12859-017-1648-2> 
    and Yu, Fernandez, and Brock (2020) <doi:10.1186/s12859-020-3541-7>.
| Version: | 2025.10.21 | 
| Depends: | R (≥ 4.2.0) | 
| Imports: | Rdpack, stats, mvnfast, glmmTMB, dplyr, multidplyr, ggplot2, scales | 
| Suggests: | tinytest, rmarkdown | 
| Published: | 2025-10-22 | 
| DOI: | 10.32614/CRAN.package.depower | 
| Author: | Brett Klamer  [aut, cre],
  Lianbo Yu  [aut] | 
| Maintainer: | Brett Klamer  <code at brettklamer.com> | 
| License: | MIT + file LICENSE | 
| URL: | https://brettklamer.com/work/depower/,
https://bitbucket.org/bklamer/depower/ | 
| NeedsCompilation: | no | 
| Language: | en-US | 
| Citation: | depower citation info | 
| Materials: | README, NEWS | 
| CRAN checks: | depower results | 
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