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Differential expression analysis for sequence count data

Simon Anders; Wolfgang Huber · Genome biology · 2010

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High-throughput sequencing assays such as RNA-Seq, ChIP-Seq or barcode counting provide quantitative readouts in the form of count data. To infer differential signal in such data correctly and with good statistical power, estimation of data variability throughout the dynamic range and a suitable error model are required. We propose a method based on the negative binomial distribution, with variance and mean linked by local regression and present an implementation, DESeq, as an R/Bioconductor package.

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APA 7

Anders, S. & Huber, W. (2010). Differential expression analysis for sequence count data. https://doi.org/10.1186/gb-2010-11-10-r106

MLA

Anders, Simon, and Wolfgang Huber. "Differential expression analysis for sequence count data." 2010. https://doi.org/10.1186/gb-2010-11-10-r106.

Chicago

Anders, Simon and Wolfgang Huber. 2010. "Differential expression analysis for sequence count data.". https://doi.org/10.1186/gb-2010-11-10-r106.

Harvard

Anders, S. and Huber, W. 2010, Differential expression analysis for sequence count data, Genome biology, available at: https://doi.org/10.1186/gb-2010-11-10-r106 [Accessed 9 Aug. 2026].

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Title
Differential expression analysis for sequence count data
Author / contributors
Simon Anders; Wolfgang Huber
Publisher
Genome biology
Publication year
2010
Language
English

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