cs.AI updates on arXiv.org 08月18日
A Generalized Similarity U Test for Multivariate Analysis of Sequencing Data
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本文提出了一种名为GSU的相似性U测试,用于解决复杂疾病遗传关联研究中数据高维度和变异低频率的问题,并通过模拟和实际数据分析证明了其优越性。

arXiv:1505.01179v3 Announce Type: cross Abstract: Sequencing-based studies are emerging as a major tool for genetic association studies of complex diseases. These studies pose great challenges to the traditional statistical methods (e.g., single-locus analyses based on regression methods) because of the high-dimensionality of data and the low frequency of genetic variants. In addition, there is a great interest in biology and epidemiology to identify genetic risk factors contributed to multiple disease phenotypes. The multiple phenotypes can often follow different distributions, which violates the assumptions of most current methods. In this paper, we propose a generalized similarity U test, referred to as GSU. GSU is a similarity-based test and can handle high-dimensional genotypes and phenotypes. We studied the theoretical properties of GSU, and provided the efficient p-value calculation for association test as well as the sample size and power calculation for the study design. Through simulation, we found that GSU had advantages over existing methods in terms of power and robustness to phenotype distributions. Finally, we used GSU to perform a multivariate analysis of sequencing data in the Dallas Heart Study and identified a joint association of 4 genes with 5 metabolic related phenotypes.

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遗传关联研究 GSU测试 复杂疾病
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