Fuzzy clustering algorithms and their applications to chemical datasets

In this work the importance of fuzzy based clustering methods is highlighted and their applications in the field of chemoinformatics, and issues involved are reviewed. The various methods and approaches of fuzzy clustering are outlined. The issue of number of valid clusters in a dataset is also dis...

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主要な著者: Shah, Jehan Zeb, Salim, Naomie
フォーマット: Conference or Workshop Item
言語:English
出版事項: 2005
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オンライン・アクセス:http://eprints.utm.my/id/eprint/3337/1/Naomie_Salim_-_Fuzzy_Clustering_algorithms_and_their_applications_to_chemical_datasets.pdf
http://eprints.utm.my/id/eprint/3337/
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要約:In this work the importance of fuzzy based clustering methods is highlighted and their applications in the field of chemoinformatics, and issues involved are reviewed. The various methods and approaches of fuzzy clustering are outlined. The issue of number of valid clusters in a dataset is also discussed. The hyper dimensional chemical datasets are traditionally been treated only with the help of conventional clustering methods like hierarchical and non-hierarchical methods. In this paper we look into the issue of clustering these chemical datasets with fuzzy paradigms. In this paper a number of fuzzy clustering approaches like fuzzy c-mean, Gustafson and Kessel , Gath and Geva, fuzzy c-varieties, adaptive fuzzy , fuzzy based c-shell algorithms and some other aspects of fuzzy clustering are discussed.