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dc.contributor.advisorMjumder, Prasenjit
dc.contributor.advisorMitra, Suman K.
dc.contributor.authorGupta, Parth
dc.date.accessioned2017-06-10T14:38:50Z
dc.date.available2017-06-10T14:38:50Z
dc.date.issued2011
dc.identifier.citationGupta, Parth (2011). Learning to rank : using Bayesian networks. Dhirubhai Ambani Institute of Information and Communication Technology, viii, 39 p. (Acc.No: T00291)
dc.identifier.urihttp://drsr.daiict.ac.in/handle/123456789/328
dc.description.abstractRanking is one of the key components of an Information Retrieval system. Recently supervised learning is involved for learning the ranking function and is called 'Learning to Rank' collectively. In this study we present one approach to solve this problem. We intend to test this problem in di erent stochastic environment and hence we choose to use Bayesian Networks for machine learning. This work also involves experimentation results on standard learning to rank dataset `Letor4.0'[6]. We call our approach as BayesNetRank. We compare the performance of BayesNetRank with another Support Vector Machine(SVM) based approach called RankSVM [5]. Performance analysis is also involved in the study to identify for which kind of queries, proposed system gives results on either extremes. Evaluation results are shown using two rank based evaluation metrics, Mean Average Precision (MAP) and Normalized Discounted Cumulative Gain (NDCG).
dc.publisherDhirubhai Ambani Institute of Information and Communication Technology
dc.subjectInformation retrieval
dc.subjectMachine learning
dc.subjectInformation storage and retrieval systems
dc.subjectNatural language processing
dc.subjectBayesian statistical decision theory
dc.subjectData processing
dc.subjectRanking and selection
dc.subjectStatistics
dc.subjectCollaborative filtering
dc.subjectLearning to rank
dc.subjectMachine translation
dc.subjectNatural language processing
dc.subjectRanking aggregation
dc.subjectRanking creation
dc.subjectSupervised learning
dc.classification.ddc025.04 GUP
dc.titleLearning to rank: using Bayesian networks
dc.typeDissertation
dc.degreeM. Tech
dc.student.id200911017
dc.accession.numberT00291


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