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   HIV-1 protease cleavage site prediction based on two-stage feature selection method  
   
نویسنده niu b. ,yuan x.-c. ,roeper p. ,su q. ,peng c.-r. ,yin j.-y. ,ding j. ,li h. ,lu w.-c.
منبع protein and peptide letters - 2013 - دوره : 20 - شماره : 3 - صفحه:290 -298
چکیده    Knowledge of the mechanism of hiv protease cleavage specificity is critical to the design of specific and effective hiv inhibitors. searching for an accurate,robust,and rapid method to correctly predict the cleavage sites in proteins is crucial when searching for possible hiv inhibitors. in this article,hiv-1 protease specificity was studied using the correlation-based feature subset (cfssubset) selection method combined with genetic algorithms method. thirty important biochemical features were found based on a jackknife test from the original data set containing 4,248 features. by using the adaboost method with the thirty selected features the prediction model yields an accuracy of 96.7% for the jackknife test and 92.1% for an independent set test,with increased accuracy over the original dataset by 6.7% and 77.4%,respectively. our feature selection scheme could be a useful technique for finding effective competitive inhibitors of hiv protease. © 2013 bentham science publishers.
کلیدواژه Adaboost; Chou's distorted key theory; Correlation-based feature subset (Cfssubset); Feature selection; Genetic algorithm (GA); Hiv protease
آدرس college of life science,shanghai university,333 nan-cheng road,shanghai, China, college of life science,shanghai university,333 nan-cheng road,shanghai, China, department of chemistry and biochemistry,ohio university,athens, United States, school of materials science and engineering,shanghai university,149 yan-chang road,shanghai, China, school of materials science and engineering,shanghai university,149 yan-chang road,shanghai, China, school of computer science and engineering,shanghai university,shanghai, China, schepens eye research institute,harvard medical school,20 staniford st.,boston, United States, cas-mpg partner institute for computational biology,shanghai institutes for biological sciences,chinese academy of sciences,320 yueyang road,shanghai, China, college of science,shanghai university,99 shang-da road,shanghai, China
 
     
   
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