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MatrixQCvis

This is thereleased version of MatrixQCvis; for the devel version, seeMatrixQCvis.

Shiny-based interactive data-quality exploration for omics data

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DOI: 10.18129/B9.bioc.MatrixQCvis


Bioconductor version: Release (3.22)

Data quality assessment is an integral part of preparatory data analysis to ensure sound biological information retrieval. We present here the MatrixQCvis package, which provides shiny-based interactive visualization of data quality metrics at the per-sample and per-feature level. It is broadly applicable to quantitative omics data types that come in matrix-like format (features x samples). It enables the detection of low-quality samples, drifts, outliers and batch effects in data sets. Visualizations include amongst others bar- and violin plots of the (count/intensity) values, mean vs standard deviation plots, MA plots, empirical cumulative distribution function (ECDF) plots, visualizations of the distances between samples, and multiple types of dimension reduction plots. Furthermore, MatrixQCvis allows for differential expression analysis based on the limma (moderated t-tests) and proDA (Wald tests) packages. MatrixQCvis builds upon the popular Bioconductor SummarizedExperiment S4 class and enables thus the facile integration into existing workflows. The package is especially tailored towards metabolomics and proteomics mass spectrometry data, but also allows to assess the data quality of other data types that can be represented in a SummarizedExperiment object.

Author: Thomas Naake [aut, cre]ORCID iD ORCID: 0000-0001-7917-5580, Wolfgang Huber [aut]ORCID iD ORCID: 0000-0002-0474-2218

Maintainer: Thomas Naake <thomasnaake at googlemail.com>

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

Installation

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

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

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("MatrixQCvis")
Shiny-based interactive data quality exploration of omics dataHTMLR Script
Reference ManualPDF
NEWSText

Need some help? Ask on the Bioconductor Support site!

Details

biocViewsDimensionReduction,GUI,Metabolomics,Proteomics,QualityControl,ShinyApps,Software,Transcriptomics,Visualization
Version1.18.0
In Bioconductor sinceBioC 3.13 (R-4.1) (4.5 years)
LicenseGPL-3
DependsR (>= 4.1.0),DT (>= 0.33),SummarizedExperiment(>= 1.20.0),plotly (>= 4.9.3),shiny (>= 1.6.0)
ImportsComplexHeatmap(>= 2.7.9),dplyr (>= 1.0.5),ExperimentHub(>= 2.6.0),ggplot2 (>= 3.3.3), grDevices (>= 4.1.0),Hmisc (>= 4.5-0),htmlwidgets (>= 1.5.3),impute(>= 1.65.0),imputeLCMD (>= 2.0),limma(>= 3.47.12),MASS (>= 7.3-58.1), methods (>= 4.1.0),pcaMethods(>= 1.83.0),proDA(>= 1.5.0),rlang (>= 0.4.10),rmarkdown (>= 2.7),Rtsne (>= 0.15),shinydashboard (>= 0.7.1),shinyhelper (>= 0.3.2),shinyjs (>= 2.0.0), stats (>= 4.1.0),sva(>= 3.52.0),tibble (>= 3.1.1),tidyr (>= 1.1.3),umap (>= 0.2.7.0),UpSetR (>= 1.4.0),vsn(>= 3.59.1)
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SuggestsBiocGenerics(>= 0.37.4),BiocStyle(>= 2.19.2),hexbin (>= 1.28.2),httr (>= 1.4.7),jpeg (>= 0.1-10),knitr (>= 1.33),statmod (>= 1.5.0),testthat (>= 3.0.2)
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Package Archives

FollowInstallation instructions to use this package in your R session.

Source PackageMatrixQCvis_1.18.0.tar.gz
Windows Binary (x86_64) MatrixQCvis_1.18.0.zip
macOS Binary (x86_64)MatrixQCvis_1.18.0.tgz
macOS Binary (arm64)MatrixQCvis_1.18.0.tgz
Source Repositorygit clone https://git.bioconductor.org/packages/MatrixQCvis
Source Repository (Developer Access)git clone git@git.bioconductor.org:packages/MatrixQCvis
Bioc Package Browserhttps://code.bioconductor.org/browse/MatrixQCvis/
Package Short Urlhttps://bioconductor.org/packages/MatrixQCvis/
Package Downloads ReportDownload Stats

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