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Bioconductor 3.22 Released

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sva

This is thereleased version of sva; for the devel version, seesva.

Surrogate Variable Analysis

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DOI: 10.18129/B9.bioc.sva


Bioconductor version: Release (3.22)

The sva package contains functions for removing batch effects and other unwanted variation in high-throughput experiment. Specifically, the sva package contains functions for the identifying and building surrogate variables for high-dimensional data sets. Surrogate variables are covariates constructed directly from high-dimensional data (like gene expression/RNA sequencing/methylation/brain imaging data) that can be used in subsequent analyses to adjust for unknown, unmodeled, or latent sources of noise. The sva package can be used to remove artifacts in three ways: (1) identifying and estimating surrogate variables for unknown sources of variation in high-throughput experiments (Leek and Storey 2007 PLoS Genetics,2008 PNAS), (2) directly removing known batch effects using ComBat (Johnson et al. 2007 Biostatistics) and (3) removing batch effects with known control probes (Leek 2014 biorXiv). Removing batch effects and using surrogate variables in differential expression analysis have been shown to reduce dependence, stabilize error rate estimates, and improve reproducibility, see (Leek and Storey 2007 PLoS Genetics, 2008 PNAS or Leek et al. 2011 Nat. Reviews Genetics).

Author: Jeffrey T. Leek <jtleek at gmail.com>, W. Evan Johnson <wej at bu.edu>, Hilary S. Parker <hiparker at jhsph.edu>, Elana J. Fertig <ejfertig at jhmi.edu>, Andrew E. Jaffe <ajaffe at jhsph.edu>, Yuqing Zhang <zhangyuqing.pkusms at gmail.com>, John D. Storey <jstorey at princeton.edu>, Leonardo Collado Torres <lcolladotor at gmail.com>

Maintainer: Jeffrey T. Leek <jtleek at gmail.com>, John D. Storey <jstorey at princeton.edu>, W. Evan Johnson <wej at bu.edu>

Citation (from within R, entercitation("sva")):

Installation

To install this package, start R (version "4.5") and enter:

if (!require("BiocManager", quietly = TRUE))    install.packages("BiocManager")BiocManager::install("sva")

For older versions of R, please refer to the appropriateBioconductor release.

Documentation

To view documentation for the version of this package installed in your system, start R and enter:

browseVignettes("sva")
sva tutorialPDFR Script
Reference ManualPDF

Need some help? Ask on the Bioconductor Support site!

Details

biocViewsBatchEffect,ImmunoOncology,Microarray,MultipleComparison,Normalization,Preprocessing,RNASeq,Sequencing,Software,StatisticalMethod
Version3.58.0
In Bioconductor sinceBioC 2.9 (R-2.14) (14 years)
LicenseArtistic-2.0
DependsR (>= 3.2),mgcv,genefilter,BiocParallel
ImportsmatrixStats, stats, graphics, utils,limma,edgeR
System Requirements
URL
See More
Suggestspamr,bladderbatch,BiocStyle,zebrafishRNASeq,testthat
Linking To
Enhances
Depends On MeDeMixT,IsoformSwitchAnalyzeR,SCAN.UPC,rnaseqGene,bapred,leapp,SmartSVA
Imports MeASSIGN,ballgown,BatchQC,BERT,BioNERO,bnbc,bnem,DaMiRseq,debrowser,DExMA,doppelgangR,edge,HarmonizR,KnowSeq,MatrixQCvis,MBECS,MSPrep,omicRexposome,PAA,pairedGSEA,POMA,PROPS,qsmooth,qsvaR,SEtools,singleCellTK,DeSousa2013,ExpressionNormalizationWorkflow,causalBatch,cinaR,dSVA,scITD,seqgendiff,TransProR
Suggests MecompcodeR,GSVA,Harman,iasva,randRotation,RnBeads,scp,SomaticSignatures,TBSignatureProfiler,TCGAbiolinks,tidybulk,curatedBladderData,curatedOvarianData,curatedTBData,FieldEffectCrc,CAGEWorkflow,DGEobj.utils,DRomics,SuperLearner
Links To Me
Build ReportBuild Report

Package Archives

FollowInstallation instructions to use this package in your R session.

Source Packagesva_3.58.0.tar.gz
Windows Binary (x86_64) sva_3.58.0.zip
macOS Binary (x86_64)sva_3.58.0.tgz
macOS Binary (arm64)sva_3.58.0.tgz
Source Repositorygit clone https://git.bioconductor.org/packages/sva
Source Repository (Developer Access)git clone git@git.bioconductor.org:packages/sva
Bioc Package Browserhttps://code.bioconductor.org/browse/sva/
Package Short Urlhttps://bioconductor.org/packages/sva/
Package Downloads ReportDownload Stats

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