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A survey of error-correction methods for next-generation sequencing

机译:下一代测序的纠错方法概述

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Error Correction is important for most next-generation sequencing applications because highly accurate sequenced reads will likely lead to higher quality results. Many techniques for error correction of sequencing data from next-gen platforms have been developed in the recent years. However, compared with the fast development of sequencing technologies, there is a lack of standardized evaluation procedure for different error-correction methods, making it difficult to assess their relative merits and demerits. In this article, we provide a comprehensive review of many error-correction methods, and establish a common set of benchmark data and evaluation criteria to provide a comparative assessment. We present experimental results on quality, run-time, memory usage and scalability of several error-correction methods. Apart from providing explicit recommendations useful to practitioners, the review serves to identify the current state of the art and promising directions for future research. Availability: All error-correction programs used in this article are downloaded from hosting websites. The evaluation tool kit is publicly available at: http://aluru-sun.ece.iastate.edu/doku.php?id=ecr.
机译:纠错对于大多数下一代测序应用而言非常重要,因为高度精确的测序读取可能会导致更高质量的结果。近年来,已经开发了许多用于对来自下一代平台的测序数据进行错误校正的技术。但是,与测序技术的飞速发展相比,对于不同的纠错方法缺乏标准化的评估程序,难以评估其相对优缺点。在本文中,我们对许多错误校正方法进行了全面的回顾,并建立了一套通用的基准数据和评估标准以进行比较评估。我们介绍了几种错误纠正方法的质量,运行时间,内存使用率和可伸缩性的实验结果。除了提供对从业者有用的明确建议外,本综述还有助于确定当前的技术水平以及未来研究的有希望的方向。可用性:本文中使用的所有错误纠正程序都是从托管网站下载的。该评估工具包可从以下网址公开获得:http://aluru-sun.ece.iastate.edu/doku.php?id=ecr。

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