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An Integrated Method of Detecting Copy Number Variation Based on Sequence Assembly

机译:基于序列组装的拷贝数变异检测方法

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The Next-generation sequencing technology is a widely used sequencing method, and many genome researches are based on its sequencing data. Currently, there are many methods of detection of genomic Structure Variation, based on NGS data. And a lot of Copy Number Variation (CNV) detection methods based on the statistical models of read depth. However, since CNV has multiple subtypes and long variant lengths, the traditional detection tools have many limitations. Therefore, this paper proposes AssCNV, a new detection method for CNV, which integrated sequence assembly strategy and read depth strategy. The subtypes of CNV considered in this paper are insertion, deletion, and duplication. Our experimental results showed that AssCNV maintains a higher level of precision and sensitivity in the simulation data of different coverage, which is much better than other available tools.
机译:下一代测序技术是一种广泛使用的测序方法,许多基因组研究都基于其测序数据。当前,基于NGS数据,有许多检测基因组结构变异的方法。而很多基于拷贝深度统计模型的拷贝数变异(CNV)检测方法。但是,由于CNV具有多个亚型和较长的变异长度,因此传统的检测工具具有许多局限性。因此,本文提出了一种新的CNV检测方法AssCNV,该方法将序列组装策略和读取深度策略相结合。本文考虑的CNV的亚型是插入,缺失和重复。我们的实验结果表明,AssCNV在不同覆盖率的模拟数据中保持较高的精度和灵敏度,这比其他可用工具要好得多。

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