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  Support vector machines for protein fold class prediction

Markowetz, F., Edler, L., & Vingron, M. (2003). Support vector machines for protein fold class prediction. Biometrical Journal, 45(3), 377-389. doi:10.1002/bimj.200390019.

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資料種別: 学術論文
その他のタイトル : Biom. J.

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 作成者:
Markowetz, Florian1, 著者
Edler, Lutz, 著者
Vingron, Martin2, 著者           
所属:
1Max Planck Society, ou_persistent13              
2Gene regulation (Martin Vingron), Dept. of Computational Molecular Biology (Head: Martin Vingron), Max Planck Institute for Molecular Genetics, Max Planck Society, ou_1479639              

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キーワード: protein fold class prediction, support vector machines, statistical classification methods, neural networks, confusion matrix
 要旨: Knowledge of the three-dimensional structure of a protein is essential for describing and understanding its function. Today, a large number of known protein sequences faces a small number of identified structures. Thus, the need arises to predict structure from sequence without using time-consuming experimental identification. In this paper the performance of Support Vector Machines (SVMs) is compared to Neural Networks and to standard statistical classification methods as Discriminant Analysis and Nearest Neighbor Classification. We show that SVMs can beat the competing methods on a dataset of 268 protein sequences to be classified into a set of 42 fold classes. We discuss misclassification with respect to biological function and similarity. In a second step we examine the performance of SVMs if the embedding is varied from frequencies of single amino acids to frequencies of tripletts of amino acids. This work shows that SVMs provide a promising alternative to standard statistical classification and prediction methods in functional genomics.

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言語: eng - English
 日付: 2003
 出版の状態: 出版
 ページ: -
 出版情報: -
 目次: -
 査読: -
 識別子(DOI, ISBNなど): eDoc: 175056
ISI: 000182686400009
DOI: 10.1002/bimj.200390019
 学位: -

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出版物 1

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出版物名: Biometrical Journal
  出版物の別名 : Biom. J.
種別: 学術雑誌
 著者・編者:
所属:
出版社, 出版地: -
ページ: - 巻号: 45 (3) 通巻号: - 開始・終了ページ: 377 - 389 識別子(ISBN, ISSN, DOIなど): ISSN: 0323-3847