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Data quality aware analysis of differential expression in RNA-seq with NOISeq R/Bioc package

机译:使用NOISeq R / Bioc软件包的RNA-seq中差异表达的数据质量感知分析

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As the use of RNA-seq has popularized, there is an increasing consciousness of the importance of experimental design, bias removal, accurate quantification and control of false positives for proper data analysis. We introduce the NOISeq R-package for quality control and analysis of count data. We show how the available diagnostic tools can be used to monitor quality issues, make pre-processing decisions and improve analysis. We demonstrate that the nonparametric NOISeqBIO efficiently controls false discoveries in experiments with biological replication and outperforms state-of-the-art methods. NOISeq is a comprehensive resource that meets current needs for robust data-aware analysis of RNA-seq differential expression.
机译:随着RNA序列的使用的普及,人们越来越意识到实验设计,偏差消除,准确定量和控制误报对正确数据分析的重要性。我们引入了NOISeq R-package,用于质量控制和计数数据分析。我们将展示如何使用可用的诊断工具来监视质量问题,做出预处理决定并改善分析。我们证明了非参数NOISeqBIO可有效地控制生物复制实验中的错误发现,并且优于最新方法。 NOISeq是一种综合资源,可以满足当前对RNA-seq差异表达的可靠数据感知分析的需求。

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