Açık Akademik Arşiv Sistemi

A new feature encoding scheme for HIV-1 protease cleavage site prediction

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dc.date.accessioned 2020-01-13T07:57:09Z
dc.date.available 2020-01-13T07:57:09Z
dc.date.issued 2013
dc.identifier.citation Gok, M; Ozcerit, AT; (2013). A new feature encoding scheme for HIV-1 protease cleavage site prediction. NEURAL COMPUTING & APPLICATIONS, 22, 1761-1757
dc.identifier.issn 0941-0643
dc.identifier.uri https://hdl.handle.net/20.500.12619/2579
dc.identifier.uri https://doi.org/10.1007/s00521-012-0967-5
dc.description.abstract HIV-1 protease has been the subject of intense research for deciphering HIV-1 virus replication process for decades. Knowledge of the substrate specificity of HIV-1 protease will enlighten the way of development of HIV-1 protease inhibitors. In the prediction of HIV-1 protease cleavage site techniques, various feature encoding techniques and machine learning algorithms have been used frequently. In this paper, a new feature amino acid encoding scheme is proposed to predict HIV-1 protease cleavage sites. In the proposed method, we combined orthonormal encoding and Taylor's venn-diagram. We used linear support vector machines as the classifier in the tests. We also analyzed our technique by comparing some feature encoding techniques. The tests are carried out on PR-1625 and PR-3261 datasets. Experimental results show that our amino acid encoding technique leads to better classification performance than other encoding techniques on a standalone classifier.
dc.language English
dc.publisher SPRINGER
dc.subject Computer Science
dc.subject Bilgisayar Bilimi
dc.title A new feature encoding scheme for HIV-1 protease cleavage site prediction
dc.type Article
dc.identifier.volume 22
dc.identifier.startpage 1757
dc.identifier.endpage 1761
dc.contributor.department Sakarya Üniversitesi/Bilgisayar Ve Bilişim Bilimleri Fakültesi/Bilgisayar Mühendisliği Bölümü
dc.contributor.saüauthor Özcerit, Ahmet Turan
dc.relation.journal NEURAL COMPUTING & APPLICATIONS
dc.identifier.wos WOS:000319769300049
dc.identifier.doi 10.1007/s00521-012-0967-5
dc.contributor.author Özcerit, Ahmet Turan
dc.contributor.author Gok, Murat


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