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ahp based feature ranking model using string similarity for resolving name ambiguity
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نویسنده
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subathra m. ,umarani v.
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منبع
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international journal of nonlinear analysis and applications - 2021 - دوره : 12 - شماره : Special Is - صفحه:1745 -1751
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چکیده
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In recent years of natural language processing research, the name ambiguity problem remains unresolved while retrieving the information of author names from bibliographic citations in a digital library system. in this paper, a feature ranking model is investigated that resolve the ambiguity problem with analytical hierarchy process (ahp). the ahp procedure prioritizes and assigns the weights for certain criteria which forms a judgemental matrix called pairwise comparison matrix. the result of the ahp analysis aims to get the preprocessing level using levenshtein distance. finally, the ahp helps to find the co-author criteria as the highest priority than the other criteria taken from the digital library data set.
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کلیدواژه
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nlp ,citations ,digital library ,levenshtein distance ,ahp
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آدرس
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psg college of technology, department of computer applications, india, psg college of technology, department of computer applications, india
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پست الکترونیکی
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vur.mca@psgtech.ac.in
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Authors
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