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Domain content based protein function prediction using incomplete GO annotation information

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Given the essential role of protein in life processes, computational assignment of protein functions has become one of the most important tasks in the area of bioinformatics. While Gene Ontology (GO) has been widely used in functional annotation, new approaches to address the problem of annotation incompleteness, which can leverage the support of the GO framework, are imminently required. In this paper, two new models are proposed to predict GO terms from domain content: a Correlation Coefficient based model (CC-M) and a Support Vector Machine (SVM) based model (SVM-M). We have developed our models in the form of predictors for all GO terms with manually curated annotations. In comparison with the Bayesian probabilistic approach published previously [Forslund et al., 2008], our methods are demonstrated to have better capability in dealing with incomplete training data. In particular, the CC-M method is suitable for GO terms with extremely low occurrence frequency, and the SVM-M method for the remaining GO terms. Therefore, CC-M and SVM-M are subsequently integrated into a single model (CC-SVM), with their respective advantages combined. ©2009 IEEE.
Original languageEnglish
Title of host publicationProceedings - 2009 IEEE International Conference on Bioinformatics and Biomedicine Workshops, BIBMW 2009
Pages50-55
DOIs
Publication statusPublished - 2009
Event2009 IEEE International Conference on Bioinformatics and Biomedicine Workshops, BIBMW 2009 - Washington, DC, United States
Duration: 1 Nov 20094 Nov 2009

Conference

Conference2009 IEEE International Conference on Bioinformatics and Biomedicine Workshops, BIBMW 2009
PlaceUnited States
CityWashington, DC
Period1/11/094/11/09

Research Keywords

  • Domain
  • GO term
  • Protein function prediction

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