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A New Approach for Parameter Estimation in the Sequence-Structure Alignment of Non-Coding RNAs

机译:非编码RNA序列结构比对中参数估计的新方法

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摘要

Recently, searching genomes with a computer program has become an important approach for identifying new noncoding RNAs (ncRNA). Such a computer program often determines whether a sequence segment is the searched ncRNA or not by aligning the sequence segment to a secondary structure model for the searched ncRNA family. To a large extent, the search accuracy depends on the accuracy of the secondary structure model. In this paper, we develop a novel algorithm that can estimate the parameters associated with a few crucial structure features that have been proposed in previous work. This algorithm determines the relative importance of the crucial structure features by solving a convex optimization problem whose objective is to maximize the recognition ability of the structure model. Our experiments also show that this new parameter estimation algorithm can significantly improve the search accuracy.
机译:最近,用计算机程序搜索基因组已成为鉴定新的非编码RNA(ncRNA)的重要方法。这种计算机程序通常通过将序列片段与所搜索的ncRNA家族的二级结构模型比对来确定序列片段是否为所搜索的ncRNA。搜索精度在很大程度上取决于二级结构模型的精度。在本文中,我们开发了一种新颖的算法,可以估算与先前工作中已提出的一些关键结构特征相关的参数。该算法通过解决凸优化问题来确定关键结构特征的相对重要性,凸优化问题的目的是最大化结构模型的识别能力。我们的实验还表明,这种新的参数估计算法可以显着提高搜索精度。

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