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Information-based models for ad hoc IR
137
Citations
18
References
2010
Year
Unknown Venue
EngineeringIntelligent Information RetrievalQuery ModelWireless ComputingCorpus Linguistics2-Poisson Mixture ModelsText MiningNatural Language ProcessingInformation RetrievalData ScienceComputational LinguisticsDfr ModelsAd Hoc NetworkRelevance FeedbackSystems EngineeringInternet Of ThingsQuery ExpansionLanguage StudiesData CommunicationKnowledge DiscoveryInformation-based ModelsAd Hoc IrLinguisticsInteractive Information Retrieval
We introduce in this paper the family of information-based models for ad hoc information retrieval. These models draw their inspiration from a long-standing hypothesis in IR, namely the fact that the difference in the behaviors of a word at the document and collection levels brings information on the significance of the word for the document. This hypothesis has been exploited in the 2-Poisson mixture models, in the notion of eliteness in BM25, and more recently in DFR models. We show here that, combined with notions related to burstiness, it can lead to simpler and better models.
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