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PcaExplorer: an R/Bioconductor package for interacting with RNA-seq principal components.


ABSTRACT: BACKGROUND:Principal component analysis (PCA) is frequently used in genomics applications for quality assessment and exploratory analysis in high-dimensional data, such as RNA sequencing (RNA-seq) gene expression assays. Despite the availability of many software packages developed for this purpose, an interactive and comprehensive interface for performing these operations is lacking. RESULTS:We developed the pcaExplorer software package to enhance commonly performed analysis steps with an interactive and user-friendly application, which provides state saving as well as the automated creation of reproducible reports. pcaExplorer is implemented in R using the Shiny framework and exploits data structures from the open-source Bioconductor project. Users can easily generate a wide variety of publication-ready graphs, while assessing the expression data in the different modules available, including a general overview, dimension reduction on samples and genes, as well as functional interpretation of the principal components. CONCLUSION:pcaExplorer is distributed as an R package in the Bioconductor project ( http://bioconductor.org/packages/pcaExplorer/ ), and is designed to assist a broad range of researchers in the critical step of interactive data exploration.

SUBMITTER: Marini F 

PROVIDER: S-EPMC6567655 | biostudies-literature | 2019 Jun

REPOSITORIES: biostudies-literature

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pcaExplorer: an R/Bioconductor package for interacting with RNA-seq principal components.

Marini Federico F   Binder Harald H  

BMC bioinformatics 20190613 1


<h4>Background</h4>Principal component analysis (PCA) is frequently used in genomics applications for quality assessment and exploratory analysis in high-dimensional data, such as RNA sequencing (RNA-seq) gene expression assays. Despite the availability of many software packages developed for this purpose, an interactive and comprehensive interface for performing these operations is lacking.<h4>Results</h4>We developed the pcaExplorer software package to enhance commonly performed analysis steps  ...[more]

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