Publication | Open Access
Question answering using maximum entropy components
46
Citations
10
References
2001
Year
Unknown Venue
EngineeringIntelligent Information RetrievalQuery ModelMaximum Entropy ClassificationCorpus LinguisticsText MiningNatural Language ProcessingInformation RetrievalData ScienceComputational LinguisticsDocument ClassificationLanguage StudiesMachine TranslationQuestion AnsweringKnowledge DiscoveryComputer ScienceMaximum Entropy ComponentsSemantic ParsingRetrieval Augmented GenerationAutomated ReasoningStatistical QuestionLinguisticsInteractive Information Retrieval
We present a statistical question answering system developed for TREC-9 in detail. The system is an application of maximum entropy classification for question/answer type prediction and named entity marking. We describe our system for information retrieval which did document retrieval from a local encyclopedia, and then expanded the query words and finally did passage retrieval from the TREC collection. We will also discuss the answer selection algorithm which determines the best sentence given both the question and the occurrence of a phrase belonging to the answer class desired by the question. A new method of analyzing system performance via a transition matrix is shown.
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