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Enter the query into the form above. You can look for specific version of a package by using @ symbol like this: gcc@10.

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where search is your query, page is a page number and limit is a number of items on a single page. Pagination information (such as a number of pages and etc) is returned in response headers.

If you'd like to join our channel search send a patch to ~whereiseveryone/toys@lists.sr.ht adding your channel as an entry in channels.scm.


r-bags 2.51.0
Propagated dependencies: r-biobase@2.72.0 r-breastcancervdx@1.50.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/BAGS
Licenses: Artistic License 2.0
Build system: r
Synopsis: Bayesian approach for geneset selection
Description:

This R package is providing functions to perform geneset significance analysis over simple cross-sectional data between 2 and 5 phenotypes of interest.

r-arrmdata 1.48.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://www.bioconductor.org/packages/ARRmData/
Licenses: Artistic License 2.0
Build system: r
Synopsis: Example dataset for normalization of Illumina 450k methylation data
Description:

This package provides raw beta values from 36 samples across 3 groups from Illumina 450k methylation arrays.

r-spp 1.16.0
Dependencies: zlib@1.3.1
Propagated dependencies: r-bh@1.90.0-1 r-catools@1.18.3 r-rcpp@1.1.1-1.1 r-rsamtools@2.28.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://cran.r-project.org/web/packages/spp/
Licenses: GPL 2
Build system: r
Synopsis: ChIP-Seq processing pipeline
Description:

This package provides tools for analysis of ChIP-seq and other functional sequencing data.

r-flowcore 2.24.0
Propagated dependencies: r-bh@1.90.0-1 r-biobase@2.72.0 r-biocgenerics@0.58.1 r-cpp11@0.5.5 r-cytolib@2.24.0 r-matrixstats@1.5.0 r-rcpp@1.1.1-1.1 r-rprotobuflib@2.24.0 r-s4vectors@0.50.1
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/flowCore
Licenses: Artistic License 2.0
Build system: r
Synopsis: Basic structures for flow cytometry data
Description:

This package provides S4 data structures and basic functions to deal with flow cytometry data.

r-saturn 1.20.0
Propagated dependencies: r-biocparallel@1.46.0 r-boot@1.3-32 r-ggplot2@4.0.3 r-limma@3.68.4 r-locfdr@1.1-8 r-matrix@1.7-5 r-pbapply@1.7-4 r-summarizedexperiment@1.42.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://github.com/statOmics/satuRn
Licenses: Artistic License 2.0
Build system: r
Synopsis: Analysis of differential transcript usage for scRNA-seq applications
Description:

satuRn provides a framework for performing differential transcript usage analyses. The package consists of three main functions. The first function, fitDTU, fits quasi-binomial generalized linear models that model transcript usage in different groups of interest. The second function, testDTU, tests for differential usage of transcripts between groups of interest. Finally, plotDTU visualizes the usage profiles of transcripts in groups of interest.

r-bsgenome 1.80.0
Propagated dependencies: r-biocgenerics@0.58.1 r-biocio@1.22.0 r-biostrings@2.80.1 r-genomicranges@1.64.0 r-iranges@2.46.0 r-matrixstats@1.5.0 r-rsamtools@2.28.0 r-rtracklayer@1.72.0 r-s4vectors@0.50.1 r-seqinfo@1.2.0 r-xvector@0.52.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/BSgenome
Licenses: Artistic License 2.0
Build system: r
Synopsis: Infrastructure for Biostrings-based genome data packages
Description:

This package provides infrastructure shared by all Biostrings-based genome data packages and support for efficient SNP representation.

r-transcriptr 1.40.0
Propagated dependencies: r-biocgenerics@0.58.1 r-caret@7.0-1 r-chipseq@1.62.0 r-genomeinfodb@1.48.0 r-genomicalignments@1.48.0 r-genomicfeatures@1.64.0 r-genomicranges@1.64.0 r-ggplot2@4.0.3 r-iranges@2.46.0 r-proc@1.19.0.1 r-reshape2@1.4.5 r-rsamtools@2.28.0 r-rtracklayer@1.72.0 r-s4vectors@0.50.1
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/transcriptR
Licenses: GPL 3
Build system: r
Synopsis: Primary transcripts detection and quantification
Description:

The differences in the RNA types being sequenced have an impact on the resulting sequencing profiles. mRNA-seq data is enriched with reads derived from exons, while GRO-, nucRNA- and chrRNA-seq demonstrate a substantial broader coverage of both exonic and intronic regions. The presence of intronic reads in GRO-seq type of data makes it possible to use it to computationally identify and quantify all de novo continuous regions of transcription distributed across the genome. This type of data, however, is more challenging to interpret and less common practice compared to mRNA-seq. One of the challenges for primary transcript detection concerns the simultaneous transcription of closely spaced genes, which needs to be properly divided into individually transcribed units. The R package transcriptR combines RNA-seq data with ChIP-seq data of histone modifications that mark active Transcription Start Sites (TSSs), such as, H3K4me3 or H3K9/14Ac to overcome this challenge. The advantage of this approach over the use of, for example, gene annotations is that this approach is data driven and therefore able to deal also with novel and case specific events.

r-ggbio 1.60.0
Propagated dependencies: r-annotationdbi@1.74.0 r-annotationfilter@1.36.0 r-biobase@2.72.0 r-biocgenerics@0.58.1 r-biostrings@2.80.1 r-biovizbase@1.60.0 r-bsgenome@1.80.0 r-ensembldb@2.36.1 r-genomeinfodb@1.48.0 r-genomicalignments@1.48.0 r-genomicfeatures@1.64.0 r-genomicranges@1.64.0 r-ggplot2@4.0.3 r-gridextra@2.3 r-gtable@0.3.6 r-hmisc@5.2-5 r-iranges@2.46.0 r-organismdbi@1.54.0 r-reshape2@1.4.5 r-rlang@1.2.0 r-rsamtools@2.28.0 r-rtracklayer@1.72.0 r-s4vectors@0.50.1 r-scales@1.4.0 r-seqinfo@1.2.0 r-summarizedexperiment@1.42.0 r-variantannotation@1.58.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: http://www.tengfei.name/ggbio/
Licenses: Artistic License 2.0
Build system: r
Synopsis: Visualization tools for genomic data
Description:

The ggbio package extends and specializes the grammar of graphics for biological data. The graphics are designed to answer common scientific questions, in particular those often asked of high throughput genomics data. All core Bioconductor data structures are supported, where appropriate. The package supports detailed views of particular genomic regions, as well as genome-wide overviews. Supported overviews include ideograms and grand linear views. High-level plots include sequence fragment length, edge-linked interval to data view, mismatch pileup, and several splicing summaries.

r-convert 1.88.0
Propagated dependencies: r-biobase@2.72.0 r-limma@3.68.4 r-marray@1.90.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: http://bioinf.wehi.edu.au/limma/convert.html
Licenses: LGPL 2.0+
Build system: r
Synopsis: Convert microarray data objects
Description:

This package defines coerce methods for microarray data objects.

r-mfuzz 2.72.0
Propagated dependencies: r-biobase@2.72.0 r-e1071@1.7-17 r-tkwidgets@1.90.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: http://mfuzz.sysbiolab.eu/
Licenses: GPL 2
Build system: r
Synopsis: Soft clustering of time series gene expression data
Description:

This is a package for noise-robust soft clustering of gene expression time-series data (including a graphical user interface).

r-oligo 1.76.0
Dependencies: zlib@1.3.1
Propagated dependencies: r-affxparser@1.84.0 r-affyio@1.82.0 r-biobase@2.72.0 r-biocgenerics@0.58.1 r-biostrings@2.80.1 r-bit@4.6.0 r-dbi@1.3.0 r-ff@4.5.2 r-oligoclasses@1.74.0 r-preprocesscore@1.74.0 r-rsqlite@3.53.1
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/oligo/
Licenses: LGPL 2.0+
Build system: r
Synopsis: Preprocessing tools for oligonucleotide arrays
Description:

This package provides a package to analyze oligonucleotide arrays (expression/SNP/tiling/exon) at probe-level. It currently supports Affymetrix (CEL files) and NimbleGen arrays (XYS files).

r-piano 2.28.0
Propagated dependencies: r-biobase@2.72.0 r-biocgenerics@0.58.1 r-dt@0.34.0 r-fgsea@1.38.0 r-gplots@3.3.0 r-htmlwidgets@1.6.4 r-igraph@2.3.2 r-marray@1.90.0 r-relations@0.6-17 r-scales@1.4.0 r-shiny@1.13.0 r-shinydashboard@0.7.3 r-shinyjs@2.1.1 r-visnetwork@2.1.4
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://varemo.github.io/piano/
Licenses: GPL 2+
Build system: r
Synopsis: Platform for integrative analysis of omics data
Description:

Piano performs gene set analysis using various statistical methods, from different gene level statistics and a wide range of gene-set collections. The package contains functions for combining the results of multiple runs of gene set analyses.

r-org-bt-eg-db 3.22.0
Propagated dependencies: r-annotationdbi@1.74.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/org.Bt.eg.db
Licenses: Artistic License 2.0
Build system: r
Synopsis: Genome wide annotation for Bovine
Description:

This package provides genome wide annotations for Bovine, primarily based on mapping using Entrez Gene identifiers.

r-metagenomeseq 1.54.0
Propagated dependencies: r-biobase@2.72.0 r-foreach@1.5.2 r-glmnet@5.0 r-gplots@3.3.0 r-limma@3.68.4 r-matrix@1.7-5 r-matrixstats@1.5.0 r-rcolorbrewer@1.1-3 r-wrench@1.30.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://github.com/HCBravoLab/metagenomeSeq
Licenses: Artistic License 2.0
Build system: r
Synopsis: Statistical analysis for sparse high-throughput sequencing
Description:

MetagenomeSeq is designed to determine features (be it OTU, species, etc.) that are differentially abundant between two or more groups of multiple samples. This package is designed to address the effects of both normalization and under-sampling of microbial communities on disease association detection and the testing of feature correlations.

r-methylumi 2.58.0
Propagated dependencies: r-annotate@1.90.0 r-annotationdbi@1.74.0 r-biobase@2.72.0 r-biocgenerics@0.58.1 r-fdb-infiniummethylation-hg19@2.2.0 r-genefilter@1.94.0 r-genomeinfodb@1.48.0 r-genomicfeatures@1.64.0 r-genomicranges@1.64.0 r-ggplot2@4.0.3 r-illuminaio@0.54.0 r-iranges@2.46.0 r-lattice@0.22-9 r-matrixstats@1.5.0 r-minfi@1.58.0 r-reshape2@1.4.5 r-s4vectors@0.50.1 r-scales@1.4.0 r-summarizedexperiment@1.42.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/methylumi
Licenses: GPL 2
Build system: r
Synopsis: Handle Illumina methylation data
Description:

This package provides classes for holding and manipulating Illumina methylation data. Based on eSet, it can contain MIAME information, sample information, feature information, and multiple matrices of data. An "intelligent" import function, methylumiR can read the Illumina text files and create a MethyLumiSet. methylumIDAT can directly read raw IDAT files from HumanMethylation27 and HumanMethylation450 microarrays. Normalization, background correction, and quality control features for GoldenGate, Infinium, and Infinium HD arrays are also included.

r-scpdata 1.20.0
Propagated dependencies: r-annotationhub@4.2.0 r-experimenthub@3.2.0 r-qfeatures@1.22.0 r-s4vectors@0.50.1 r-singlecellexperiment@1.34.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/scpdata
Licenses: GPL 2
Build system: r
Synopsis: Single-cell proteomics data package
Description:

The package disseminates mass spectrometry (MS)-based single-cell proteomics (SCP) datasets. The data were collected from published work and formatted using the `scp` data structure. The data sets contain quantitative information at spectrum, peptide and/or protein level for single cells or minute sample amounts.

r-rhdf5filters 1.24.0
Dependencies: bzip2@1.0.8 c-blosc@1.21.1 zlib@1.3.1 zstd@1.5.6
Propagated dependencies: r-rhdf5lib@2.0.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://github.com/grimbough/rhdf5filters
Licenses: FreeBSD
Build system: r
Synopsis: HDF5 compression filters
Description:

This package provides a collection of compression filters for use with HDF5 datasets.

r-flowstats 4.24.0
Propagated dependencies: r-biobase@2.72.0 r-biocgenerics@0.58.1 r-clue@0.3-68 r-cluster@2.1.8.2 r-corpcor@1.6.10 r-fda@6.3.0 r-flowcore@2.24.0 r-flowviz@1.76.0 r-flowworkspace@4.24.0 r-kernsmooth@2.23-26 r-ks@1.15.2 r-lattice@0.22-9 r-mass@7.3-65 r-mnormt@2.1.2 r-ncdfflow@2.58.0 r-rcolorbrewer@1.1-3 r-rrcov@1.7-7
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: http://www.github.com/RGLab/flowStats
Licenses: Artistic License 2.0
Build system: r
Synopsis: Statistical methods for the analysis of flow cytometry data
Description:

This package provides methods and functionality to analyze flow data that is beyond the basic infrastructure provided by the flowCore package.

r-noiseq 2.56.0
Propagated dependencies: r-biobase@2.72.0 r-matrix@1.7-5
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/NOISeq
Licenses: Artistic License 2.0
Build system: r
Synopsis: Exploratory analysis and differential expression for RNA-seq data
Description:

This package provides tools to support the analysis of RNA-seq expression data or other similar kind of data. It provides exploratory plots to evaluate saturation, count distribution, expression per chromosome, type of detected features, features length, etc. It also supports the analysis of differential expression between two experimental conditions with no parametric assumptions.

r-xllim 2.3.1
Propagated dependencies: r-abind@1.4-8 r-capushe@1.1.3 r-corpcor@1.6.10 r-e1071@1.7-17 r-glmnet@5.0 r-igraph@2.3.2 r-mass@7.3-65 r-matrix@1.7-5 r-mda@0.5-5 r-mixomics@6.36.0 r-progress@1.2.3 r-randomforest@4.7-1.2
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://cran.r-project.org/package=xLLiM
Licenses: GPL 2+
Build system: r
Synopsis: High dimensional locally-linear mapping
Description:

This package provides a tool for non linear mapping (non linear regression) using a mixture of regression model and an inverse regression strategy. The methods include the GLLiM model (see Deleforge et al (2015) <DOI:10.1007/s11222-014-9461-5>) based on Gaussian mixtures and a robust version of GLLiM, named SLLiM (see Perthame et al (2016) <DOI:10.1016/j.jmva.2017.09.009>) based on a mixture of Generalized Student distributions. The methods also include BLLiM (see Devijver et al (2017) <arXiv:1701.07899>) which is an extension of GLLiM with a sparse block diagonal structure for large covariance matrices (particularly interesting for transcriptomic data).

r-monocle 2.40.0
Propagated dependencies: r-biobase@2.72.0 r-biocgenerics@0.58.1 r-biocviews@1.80.0 r-cluster@2.1.8.2 r-combinat@0.0-8 r-ddrtree@0.1.6 r-dplyr@1.2.1 r-fastica@1.2-7 r-ggplot2@4.0.3 r-hsmmsinglecell@1.32.0 r-igraph@2.3.2 r-irlba@2.3.7 r-leidenbase@0.1.37 r-limma@3.68.4 r-mass@7.3-65 r-matrix@1.7-5 r-matrixstats@1.5.0 r-pheatmap@1.0.13 r-plyr@1.8.9 r-proxy@0.4-29 r-rann@2.6.2 r-rcpp@1.1.1-1.1 r-reshape2@1.4.5 r-rtsne@0.17 r-slam@0.1-55 r-stringr@1.6.0 r-tibble@3.3.1 r-vgam@1.1-14 r-viridis@0.6.5
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/monocle
Licenses: Artistic License 2.0
Build system: r
Synopsis: Clustering, differential expression, and trajectory analysis for single-cell RNA-Seq
Description:

Monocle performs differential expression and time-series analysis for single-cell expression experiments. It orders individual cells according to progress through a biological process, without knowing ahead of time which genes define progress through that process. Monocle also performs differential expression analysis, clustering, visualization, and other useful tasks on single cell expression data. It is designed to work with RNA-Seq and qPCR data, but could be used with other types as well.

r-omicade4 1.52.0
Propagated dependencies: r-ade4@1.7-24 r-biobase@2.72.0 r-made4@1.86.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/omicade4
Licenses: GPL 2
Build system: r
Synopsis: Multiple co-inertia analysis of omics datasets
Description:

This package performs multiple co-inertia analysis of omics datasets.

r-oscope 1.42.0
Propagated dependencies: r-biocparallel@1.46.0 r-cluster@2.1.8.2 r-ebseq@2.10.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://bioconductor.org/packages/Oscope
Licenses: ASL 2.0
Build system: r
Synopsis: Oscillatory genes identifier in unsynchronized single cell RNA-seq
Description:

Oscope is a oscillatory genes identifier in unsynchronized single cell RNA-seq. This statistical pipeline has been developed to identify and recover the base cycle profiles of oscillating genes in an unsynchronized single cell RNA-seq experiment. The Oscope pipeline includes three modules: a sine model module to search for candidate oscillator pairs; a K-medoids clustering module to cluster candidate oscillators into groups; and an extended nearest insertion module to recover the base cycle order for each oscillator group.

r-prolocdata 1.50.0
Propagated dependencies: r-biobase@2.72.0 r-msnbase@2.37.0
Channel: guix
Location: gnu/packages/bioconductor.scm (gnu packages bioconductor)
Home page: https://github.com/lgatto/pRolocdata
Licenses: GPL 2
Build system: r
Synopsis: Data accompanying the pRoloc package
Description:

This package provides mass-spectrometry based spatial proteomics data sets and protein complex separation data. It also contains the time course expression experiment from Mulvey et al. (2015).

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