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voom: precision weights unlock linear model analysis tools for RNA-seq read counts

Charity W. Law; Yunshun Chen; Wei Shi; Gordon K. Smyth · Genome biology · 2014

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New normal linear modeling strategies are presented for analyzing read counts from RNA-seq experiments. The voom method estimates the mean-variance relationship of the log-counts, generates a precision weight for each observation and enters these into the limma empirical Bayes analysis pipeline. This opens access for RNA-seq analysts to a large body of methodology developed for microarrays. Simulation studies show that voom performs as well or better than count-based RNA-seq methods even when the data are generated according to the assumptions of the earlier methods. Two case studies illustrate the use of linear modeling and gene set testing methods.

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APA 7

Law, C. W, Chen, Y, Shi, W, & Smyth, G. K. (2014). voom: precision weights unlock linear model analysis tools for RNA-seq read counts. https://doi.org/10.1186/gb-2014-15-2-r29

MLA

Law, Charity W, et al. "voom: precision weights unlock linear model analysis tools for RNA-seq read counts." 2014. https://doi.org/10.1186/gb-2014-15-2-r29.

Chicago

Law, Charity W, Yunshun Chen, Wei Shi, and Gordon K. Smyth. 2014. "voom: precision weights unlock linear model analysis tools for RNA-seq read counts.". https://doi.org/10.1186/gb-2014-15-2-r29.

Harvard

Law, C. W. et al. 2014, voom: precision weights unlock linear model analysis tools for RNA-seq read counts, Genome biology, available at: https://doi.org/10.1186/gb-2014-15-2-r29 [Accessed 7 Aug. 2026].

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Title
voom: precision weights unlock linear model analysis tools for RNA-seq read counts
Author / contributors
Charity W. Law; Yunshun Chen; Wei Shi; Gordon K. Smyth
Publisher
Genome biology
Publication year
2014
Language
English

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