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A scaling normalization method for differential expression analysis of RNA-seq data.

The fine detail provided by sequencing-based transcriptome surveys suggests that RNA-seq is likely to become the platform of choice for interrogating steady state RNA. In order to discover biologically important changes in expression, we show that normalization continues to be an essential step in the analysis. We outline a simple and effective method for performing normalization and show dramatically improved results for inferring differential expression in simulated and publicly available data sets.

A scaling normalization method for differential expression analysis of RNA-seq data.

> 商业许可源文 · EUROPE_PMC · [CC-BY](https://creativecommons.org/licenses/by/)

书目信息

  • 引用:Robinson MD, Oshlack A. (2010). A scaling normalization method for differential expression analysis of RNA-seq data. Genome biology. PMID 20196867 · PMC2864565 · DOI 10.1186/gb-2010-11-3-r25
  • 证据类型:METHODS
  • 主题:rna-seq
  • 被引次数(采集时):6426
  • 原始记录:[Europe PMC](https://europepmc.org/article/MED/20196867)
  • 来源许可:[CC-BY](https://creativecommons.org/licenses/by/)
  • 作者摘要(按来源许可复用)

    The fine detail provided by sequencing-based transcriptome surveys suggests that RNA-seq is likely to become the platform of choice for interrogating steady state RNA. In order to discover biologically important changes in expression, we show that normalization continues to be an essential step in the analysis. We outline a simple and effective method for performing normalization and show dramatically improved results for inferring differential expression in simulated and publicly available data sets.

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    A scaling normalization method for differential expression analysis of RNA-seq data. · GeniOmics