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| Content Provider | IEEE Xplore Digital Library |
|---|---|
| Author | Suryanto, C.H. Hino, H. Fukui, K. |
| Copyright Year | 2013 |
| Description | Author affiliation: Grad. Sch. of Syst. & Inf. Eng., Univ. of Tsukuba, Tsukuba, Japan (Suryanto, C.H.; Hino, H.; Fukui, K.) |
| Abstract | In structural biology, measuring the similarity between two protein structures is an essential task. The most common approach is to find the best alignment between two protein backbone structures and use the root mean square deviation (RMSD) of the superimposed alpha-carbon atom coordinates as the distance measurement. Other approaches extract features of the protein structures and the similarity measure is based on the extracted features. However, there is no single best approach, as each has its own advantages and limitations. One intuitive idea is that a better result can be obtained by combining complementary approaches. In this paper, we propose a new approach to protein fold classification, by introducing the concept of large margin nearest neighbor for combining multiple measures of distance between protein structures. We combine the Euclidean distance matrices of 12 features extracted from the amino acid sequence of the protein, the RMSD obtained from the geometrical alignment using Combinatorial Extension, and the canonical angles between the subspaces generated from the synthesized multi-view protein structure images. We demonstrate the effectiveness of the proposed method by classifying 27 fold classes of proteins in the Ding Dubchak dataset. |
| Starting Page | 440 |
| Ending Page | 445 |
| File Size | 355328 |
| Page Count | 6 |
| File Format | |
| ISBN | 9781479921904 |
| DOI | 10.1109/ACPR.2013.139 |
| Language | English |
| Publisher | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Publisher Date | 2013-11-05 |
| Publisher Place | Japan |
| Access Restriction | Subscribed |
| Rights Holder | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Subject Keyword | Proteins Measurement Training Three-dimensional displays Accuracy Feature extraction Protein fold classification Vectors Metric learning Large margin nearest neighbor |
| Content Type | Text |
| Resource Type | Article |
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