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首页> 外文期刊>IEEE Transactions on Knowledge and Data Engineering >Finding patterns on protein surfaces: algorithms and applications to protein classification
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Finding patterns on protein surfaces: algorithms and applications to protein classification

机译:在蛋白质表面上寻找模式:蛋白质分类的算法和应用

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摘要

A successful application of data mining to bioinformatics is protein classification. A number of techniques have been developed to classify proteins according to important features in their sequences, secondary structures, or three-dimensional structures. In this paper, we introduce a novel approach to protein classification based on significant patterns discovered on the surface of a protein. We define a notion called /spl alpha/-surface. We discuss the geometric properties of /spl alpha/-surface and present an algorithm that calculates the /spl alpha/-surface from a finite set of points in R/sup 3/. We apply the algorithm to extracting the /spl alpha/-surface of a protein and use a pattern discovery algorithm to discover frequently occurring patterns on the surfaces. The pattern discovery algorithm utilizes a new index structure called the /spl Delta/B/sup +/ tree. We use these patterns to classify the proteins. While most existing techniques focus on the binary classification problem, we apply our approach to classifying three families of proteins. Experimental results show the good performance of the proposed approach.
机译:数据挖掘在生物信息学中的成功应用是蛋白质分类。已经开发了许多技术来根据蛋白质序列,二级结构或三维结构中的重要特征对蛋白质进行分类。在本文中,我们介绍了一种基于蛋白质表面发现的重要模式的蛋白质分类新方法。我们定义了一个名为/ spl alpha / -surface的概念。我们讨论了/ spl alpha / -surface的几何特性,并提出了一种算法,该算法根据R / sup 3 /中的一组有限点计算/ spl alpha / -surface。我们将算法应用于提取蛋白质的/ spl alpha /表面,并使用模式发现算法来发现表面上频繁发生的模式。模式发现算法利用称为/ spl Delta / B / sup + /树的新索引结构。我们使用这些模式对蛋白质进行分类。尽管大多数现有技术着眼于二元分类问题,但我们将我们的方法应用于蛋白质的三个家族分类。实验结果表明了该方法的良好性能。

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