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A new hybrid coding for protein secondary structure prediction based on primary structure similarity

机译:一种基于初级结构相似性的蛋白质二级结构预测的新杂化编码

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摘要

The coding pattern of protein can greatly affect the prediction accuracy of protein secondary structure. In this paper, a novel hybrid coding method based on the physicochemical properties of amino acids and tendency factors is proposed for the prediction of protein secondary structure. The principal component analysis (PCA) is first applied to the physicochemical properties of amino acids to construct a 3-bit-code, and then the 3 tendency factors of amino acids are calculated to generate another 3-bit-code. Two 3-bit-codes are fused to form a novel hybrid 6-bit-code. Furthermore, we make a geometry-based similarity comparison of the protein primary structure between the reference set and the test set before the secondary structure prediction. We finally use the support vector machine (SVM) to predict those amino acids which are not detected by the primary structure similarity comparison. Experimental results show that our method achieves a satisfactory improvement in accuracy in the prediction of protein secondary structure. (C) 2017 Elsevier B.V. All rights reserved.
机译:蛋白质的编码模式可以大大影响蛋白质二级结构的预测准确性。本文提出了一种基于氨基酸物理化学性质的新型杂化编码方法和趋势因子的预测蛋白质二级结构。首先将主要成分分析(PCA)应用于氨基酸的物理化学性质以构建3比特码,然后计算氨基酸的3个趋势因子以产生另外的3位码。两个3位代码融合以形成新的混合6位码。此外,我们在二级结构预测之前制造基于蛋白质主要结构的基于几何形状的相似性比较。我们终于使用支持向量机(SVM)来预测由主要结构相似性比较未检测到的那些氨基酸。实验结果表明,我们的方法在蛋白质二级结构预测中达到了令人满意的提高。 (c)2017 Elsevier B.v.保留所有权利。

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