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DNMFilter_Indel: Filtering de novo Indels in Parent-Offspring Trios

机译:dnmfilter_indel:过滤De Novo Indels在父母后代Trios中

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Identification of de novo indels from whole genome or exome sequencing data of parent-offspring trios is a challenging task in human disease studies and clinical practices. Existing computational approaches usually yield high false positive rate. In this study, we developed a gradient boosting approach for filtering de novo indels obtained by any computational approaches. Through application on the real genome sequencing data, our approach showed it could significantly reduce the false positive rate of de novo indels without a significant compromise on sensitivity. The software DNMFilter_Indel was written in a combination of Java and R and freely available from the website at https://github.com/yongzhuang/DNMFilter_Indel.
机译:来自全基因组或末端测序数据的De Novo Indels的鉴定是父母后代TRIOS的终端排序数据是人类疾病研究和临床实践中的一个具有挑战性的任务。现有的计算方法通常会产生高误率。在这项研究中,我们开发了一种梯度升压方法,用于通过任何计算方法获得的De Novo Indel。通过在真实基因组测序数据上的应用,我们的方法显示它可以显着降低De Novo Indels的假阳性率,而不会对敏感性显着妥协。 DNMFilter_Indel软件是用Java和R的组合编写的,并在Https://github.com/yongzhuang/dnmfilter_indel自由购买。

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