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An RNA secondary structure prediction method based on minimum and suboptimal free energy structures

机译:基于最小和次优自由能结构的RNA二级结构预测方法

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The function of an RNA-molecule is mainly determined by its tertiary structures. And its secondary structure is an important determinant of its tertiary structure. The comparative methods usually give better results than the single-sequence methods. Based on minimum and suboptimal free energy structures, the paper presents a novel method for predicting conserved secondary structure of a group of related RNAs. In the method, the information from the known RNA structures is used as training data in a SVM (Support Vector Machine) classifier. Our method has been tested on the benchmark dataset given by Puton et al. The results show that the average sensitivity of our method is higher than that of other comparative methods such as CentroidAlifold, MXScrana, RNAalifold, and TurboFold. (C) 2015 Elsevier Ltd. All rights reserved.
机译:RNA分子的功能主要取决于其三级结构。其二级结构是其三级结构的重要决定因素。比较方法通常比单序列方法提供更好的结果。基于最小和次优的自由能结构,本文提出了一种预测一组相关RNA的保守二级结构的新方法。在该方法中,来自已知RNA结构的信息在SVM(支持向量机)分类器中用作训练数据。我们的方法已经在Puton等人给出的基准数据集上进行了测试。结果表明,我们的方法的平均灵敏度高于其他比较方法,如CentroidAlifold,MXScrana,RNAalifold和TurboFold。 (C)2015 Elsevier Ltd.保留所有权利。

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