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Integrative Analyses of Cancer Data: A Review from a Statistical Perspective

机译:癌症数据的综合分析:从统计角度的回顾

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It has become increasingly common for large-scale public data repositories and clinical settings to have multiple types of data, including high-dimensional genomics, epigenomics, and proteomics data as well as survival data, measured simultaneously for the same group of biological samples, which provides unprecedented opportunities to understand cancer mechanisms from a more comprehensive scope and to develop new cancer therapies. Nevertheless, how to interpret a wealth of data into biologically and clinically meaningful information remains very challenging. In this paper, I review recent development in statistics for integrative analyses of cancer data. Topics will cover meta-analysis of homogeneous type of data across multiple studies, integrating multiple heterogeneous genomic data types, survival analysis with high- or ultrahigh-dimensional genomic profiles, and cross-data-type prediction where both predictors and responses are high- or ultrahigh-dimensional vectors. I compare existing statistical methods and comment on potential future research problems.
机译:大型公共数据存储库和临床设置具有多种类型的数据已变得越来越普遍,其中包括对同一组生物样本同时测量的高维基因组学,表观基因组学和蛋白质组学数据以及生存数据。提供了前所未有的机会,可以从更广泛的角度了解癌症机制并开发新的癌症疗法。然而,如何将大量数据解释为具有生物学和临床意义的信息仍然非常具有挑战性。在本文中,我回顾了用于癌症数据综合分析的统计学的最新进展。主题将涵盖跨多个研究的同类数据的荟萃分析,整合多种异质基因组数据类型,具有高维或超高维基因组概况的生存分析,以及预测因子和响应均为高或高的跨数据类型预测超高维向量。我比较现有的统计方法,并对潜在的未来研究问题发表评论。

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