A novel protein structure classification model

Wenzheng Bao, Yuehui Chen, Dong Wang
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引用次数: 1

Abstract

Protein tertiary structure prediction is an important area of research in bioinformatics. In this paper, we proposed a new method to predict the tertiary structure of the protein, the method by extracting the protein sequence of the amino acid frequencies generalization dipeptide information hydrophobic combination, using neural networks and flexible neural tree classifier for different the integrated structure classification model. To evaluate the efficiency of the proposed method we choose two benchmark protein sequence datasets (640 dataset and 1189 dataset) as the test data set. The final results show that our method is efficient for protein structure prediction.
一种新的蛋白质结构分类模型
蛋白质三级结构预测是生物信息学研究的一个重要领域。本文提出了一种预测蛋白质三级结构的新方法,该方法通过提取蛋白质序列中氨基酸频率概化二肽信息的疏水组合,利用神经网络和柔性神经树分类器对不同结构进行综合分类模型。为了评估该方法的有效性,我们选择了两个基准蛋白质序列数据集(640数据集和1189数据集)作为测试数据集。结果表明,该方法对蛋白质结构预测是有效的。
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