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   Using amino acid factor scores to predict avian-to-human transmission of avian influenza viruses: A machine learning study  
   
نویسنده wang j. ,kou z. ,duan m. ,ma c. ,zhou y.
منبع protein and peptide letters - 2013 - دوره : 20 - شماره : 10 - صفحه:1115 -1121
چکیده    In this study,the problem of predicting interspecies transmission of avian influenza viruses (aivs) was investigated with machine learning methods. we identified 87 signature positions in aiv protein sequences with information entropy method and encoded these positions with five amino acid factor scores (aafactors) concentrated from 491 physicochemical and biochemical properties of amino acids. we constructed four prediction models by integrating these five features with commonly used machine learning technologies including decision tree,naive bayes,random forest and support vector machine. the cross validation experiment results demonstrated the power of aafactors in predicting avian-to-human transmission of aivs. comparative analysis revealed the strengths and weaknesses of different machine learning methods,and the importance of different aafactors to the prediction. © 2013 bentham science publishers.
کلیدواژه AAIndex; Amino acid factor; Avian influenza A virus; Decision tree; Interspecies transmission; Machine learning; Naive bayes; Random forest; Support vector machine
آدرس college of science,huazhong agricultural university, China, state key laboratory of virology,wuhan institute of virology,chinese academy of sciences,wuhan, China, gustaf h. carlson school of chemistry and biochemistry,clark university,worcester, United States, school of plant sciences,university of arizona,tucson, United States, hubei bioinformatics and molecular imaging key laboratory,school of life science and technology,huazhong university of science and technology, China
 
     
   
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