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smashr: Smoothing by Adaptive Shrinkage

Fast, wavelet-based Empirical Bayes shrinkage methods for signal denoising, including smoothing Poisson-distributed data and Gaussian-distributed data with possibly heteroskedastic error. The algorithms implement the methods described Z. Xing, P. Carbonetto & M. Stephens (2021) <https://jmlr.org/papers/v22/19-042.html>.

Version:1.3-12
Depends:R (≥ 3.1.1)
Imports:utils, stats,data.table,caTools,wavethresh,ashr,Rcpp (≥1.1.0)
LinkingTo:Rcpp
Suggests:knitr,rmarkdown,MASS,EbayesThresh,testthat
Published:2025-12-15
DOI:10.32614/CRAN.package.smashr
Author:Zhengrong Xing [aut], Matthew Stephens [aut], Kaiqian Zhang [ctb], Daniel Nachun [ctb], Guy Nason [cph], Stuart Barber [cph], Tim Downie [cph], Piotr Frylewicz [cph], Arne Kovac [cph], Todd Ogden [cph], Bernard Silverman [cph], Peter Carbonetto [aut, cre]
Maintainer:Peter Carbonetto <pcarbo at uchicago.edu>
BugReports:https://github.com/stephenslab/smashr/issues
License:GPL (≥ 3)
Copyright:file COPYRIGHTS
smashr copyright details
URL:https://github.com/stephenslab/smashr
NeedsCompilation:yes
Citation:smashr citation info
Materials:README
CRAN checks:smashr results

Documentation:

Reference manual:smashr.html ,smashr.pdf

Downloads:

Package source: smashr_1.3-12.tar.gz
Windows binaries: r-devel:smashr_1.3-12.zip, r-release:not available, r-oldrel:smashr_1.3-12.zip
macOS binaries: r-release (arm64):smashr_1.3-12.tgz, r-oldrel (arm64):smashr_1.3-12.tgz, r-release (x86_64):smashr_1.3-12.tgz, r-oldrel (x86_64):smashr_1.3-12.tgz

Linking:

Please use the canonical formhttps://CRAN.R-project.org/package=smashrto link to this page.


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