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Efficient soft relational clustering based on randomized search applied to selection of bio-basis for amino acid sequence analysis

机译:基于随机搜索的高效软关系聚类应用于氨基酸序列分析的生物基础选择

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摘要

Protein sequence clustering is a process that aims to identify sets of homologous proteins in a protein database. In this paper, two efficient soft c-mediods clustering algorithms for prototype selection for protein sequences are presented. In the proposed techniques patterns are considered to belong to some but not necessarily all clusters. The proposed algorithms is comprised of a judicious integration of the principles of fuzzy sets, semi-fuzzy or soft clustering models, the amino acid mutation matrix. Applying randomized search along with soft clustering model to the fuzzy c-medoids algorithm enables efficient and effective selection of the minimum set of the most informative bio-bases. The efficiency and the effectiveness of the proposed algorithms, along with a comparison with other algorithms, have been demonstrated on different types of protein data sets.
机译:蛋白质序列聚类是旨在识别蛋白质数据库中同源蛋白质集的过程。在本文中,提出了两种有效的软c介质聚类算法,用于蛋白质序列的原型选择。在提出的技术中,模式被认为属于某些集群,但不一定是全部集群。所提出的算法包括对模糊集,半模糊或软聚类模型,氨基酸突变矩阵原理的明智整合。将随机搜索与软聚类模型一起应用到模糊c-medoids算法,可以高效,有效地选择最少的信息量最大的生物库。已经在不同类型的蛋白质数据集上证明了所提出算法的效率和有效性,以及与其他算法的比较。

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