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首页> 外文期刊>Journal of human genetics >Grouping preprocess to accurately extend application of EM algorithm to haplotype inference.
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Grouping preprocess to accurately extend application of EM algorithm to haplotype inference.

机译:分组预处理可以准确地将EM算法的应用扩展到单元型推断中。

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摘要

Haplotype inference is an indispensable technique in medical science, especially in genome-wide association studies. Although the conventional method of inference using the expectation-maximization (EM) algorithm by Excoffier and Slatkin is one standard approach, as its calculation cost is an exponential function of the maximum number of heterozygous loci, it has not been widely applied. We propose a method of haplotype inference that can empirically accommodate up to several tens of single nucleotide polymorphism loci in a single haplotype block while maintaining criteria that are exactly equivalent to those of the EM algorithm. The idea is to reduce the cost of calculating the EM algorithm by using a haplotype-grouping preprocess exploiting the symmetrical and inclusive relationships of haplotypes based on the Hardy-Weinberg equilibrium. Testing of the proposed method using real data sets revealed that it has a wider range of applications than the EM algorithm.
机译:单倍型推断是医学中必不可少的技术,尤其是在全基因组关联研究中。尽管使用Excoffier和Slatkin的使用期望最大化(EM)算法的常规推理方法是一种标准方法,但是由于其计算成本是最大杂合基因座数量的指数函数,因此尚未广泛应用。我们提出了一种单倍型推论的方法,该方法可以根据经验在单个单倍型块中容纳多达数十个单核苷酸多态性基因座,同时保持与EM算法完全相同的标准。想法是通过使用基于Hardy-Weinberg平衡的单倍型的对称和包含关系,利用单倍型分组预处理来降低计算EM算法的成本。使用实际数据集对提出的方法进行测试表明,与EM算法相比,它具有更广泛的应用范围。

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