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Bayesian negative binomial regression for differential expression with confounding factors

机译:贝叶斯消极二项式回归对混淆因素的差异表达

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摘要

Motivation: Rapid adoption of high-throughput sequencing technologies has enabled better understanding of genome-wide molecular profile changes associated with phenotypic differences in biomedical studies. Often, these changes are due to multiple interacting factors. Existing methods are mostly considering differential expression across two conditions studying one main factor without considering other confounding factors. In addition, they are often coupled with essential sophisticated ad-hoc pre-processing steps such as normalization, restricting their adaptability to general experimental setups. Complex multi-factor experimental design to accurately decipher genotype-phenotype relationships signifies the need for developing effective statistical tools for genome-scale sequencing data profiled under multi-factor conditions.
机译:动机:快速采用高通量测序技术,使得能够更好地了解与生物医学研究中的表型差异相关的基因组分子谱变化。 通常,这些变化是由于多种相互作用因素。 现有方法主要考虑两个条件的差异表达,在不考虑其他混乱因素的情况下研究一个主要因素。 此外,它们通常与必要的复杂的Ad-hoc预处理步骤(例如归一化)耦合,限制它们对一般实验设置的适应性。 复杂的多因素实验设计,准确破译基因型 - 表型关系表示需要在多因素条件下开发用于基因组测序数据的有效统计工具的需求。

著录项

  • 来源
    《Bioinformatics》 |2018年第19期|共8页
  • 作者单位

    Texas A&

    M Univ TEES AgriLife Ctr Bioinformat &

    Genom Syst Engn Dept Elect &

    Comp Engn College Stn TX 77843 USA;

    Univ Texas Austin Dept Informat Risk &

    Operat Management Austin TX 78712 USA;

    Texas A&

    M Univ TEES AgriLife Ctr Bioinformat &

    Genom Syst Engn Dept Elect &

    Comp Engn College Stn TX 77843 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物工程学(生物技术);
  • 关键词

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