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A novel Multi-Agent Ada-Boost algorithm for predicting protein structural class with the information of protein secondary structure

机译:利用蛋白质二级结构信息预测蛋白质结构类别的新颖多Agent Ada-Boost算法

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摘要

Knowledge of the structural class of a given protein is important for understanding its folding patterns. Although a lot of efforts have been made, it still remains a challenging problem for prediction of protein structural class solely from protein sequences. The feature extraction and classification of proteins are the main problems in prediction. In this research, we extended our earlier work regarding these two aspects. In protein feature extraction, we proposed a scheme by calculating the word frequency and word position from sequences of amino acid, reduced amino acid, and secondary structure. For an accurate classification of the structural class of protein, we developed a novel Multi-Agent Ada-Boost (MA-Ada) method by integrating the features of Multi-Agent system into Ada-Boost algorithm. Extensive experiments were taken to test and compare the proposed method using four benchmark datasets in low homology. The results showed classification accuracies of 88.5%, 96.0%, 88.4%, and 85.5%, respectively, which are much better compared with the existing methods. The source code and dataset are available on request.
机译:了解给定蛋白质的结构类别对于理解其折叠模式非常重要。尽管已经做了很多努力,但是仅从蛋白质序列来预测蛋白质结构类别仍然是一个具有挑战性的问题。蛋白质的特征提取和分类是预测中的主要问题。在这项研究中,我们扩展了关于这两个方面的早期工作。在蛋白质特征提取中,我们提出了一种通过从氨基酸,还原氨基酸和二级结构序列计算单词频率和单词位置的方案。为了准确分类蛋白质的结构类别,我们通过将Multi-Agent系统的功能集成到Ada-Boost算法中,开发了一种新颖的Multi-Agent Ada-Boost(MA-Ada)方法。进行了广泛的实验以使用低同源性的四个基准数据集来测试和比较该方法。结果表明分类精度分别为88.5%,96.0%,88.4%和85.5%,与现有方法相比要好得多。可根据要求提供源代码和数据集。

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