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VAExprs

This is thereleased version of VAExprs; for the devel version, seeVAExprs.

Generating Samples of Gene Expression Data with Variational Autoencoders

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DOI: 10.18129/B9.bioc.VAExprs


Bioconductor version: Release (3.22)

A fundamental problem in biomedical research is the low number of observations, mostly due to a lack of available biosamples, prohibitive costs, or ethical reasons. By augmenting a few real observations with artificially generated samples, their analysis could lead to more robust and higher reproducible. One possible solution to the problem is the use of generative models, which are statistical models of data that attempt to capture the entire probability distribution from the observations. Using the variational autoencoder (VAE), a well-known deep generative model, this package is aimed to generate samples with gene expression data, especially for single-cell RNA-seq data. Furthermore, the VAE can use conditioning to produce specific cell types or subpopulations. The conditional VAE (CVAE) allows us to create targeted samples rather than completely random ones.

Author: Dongmin Jung [cre, aut]ORCID iD ORCID: 0000-0001-7499-8422

Maintainer: Dongmin Jung <dmdmjung at gmail.com>

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

Installation

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

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

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("VAExprs")
VAExprsHTMLR Script
Reference ManualPDF
NEWSText

Need some help? Ask on the Bioconductor Support site!

Details

biocViewsGeneExpression,SingleCell,Software
Version1.16.0
In Bioconductor sinceBioC 3.14 (R-4.1) (4 years)
LicenseArtistic-2.0
Dependskeras,mclust
ImportsSingleCellExperiment,SummarizedExperiment,tensorflow,scater,CatEncoders,DeepPINCS,purrr,DiagrammeR, stats
System Requirements
URL
See More
SuggestsSC3,knitr,testthat,reticulate,rmarkdown
Linking To
Enhances
Depends On Me
Imports Me
Suggests MeGenProSeq
Links To Me
Build ReportBuild Report

Package Archives

FollowInstallation instructions to use this package in your R session.

Source PackageVAExprs_1.16.0.tar.gz
Windows Binary (x86_64) VAExprs_1.16.0.zip
macOS Binary (x86_64)VAExprs_1.16.0.tgz
macOS Binary (arm64)VAExprs_1.16.0.tgz
Source Repositorygit clone https://git.bioconductor.org/packages/VAExprs
Source Repository (Developer Access)git clone git@git.bioconductor.org:packages/VAExprs
Bioc Package Browserhttps://code.bioconductor.org/browse/VAExprs/
Package Short Urlhttps://bioconductor.org/packages/VAExprs/
Package Downloads ReportDownload Stats

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