Publication | Open Access
Exploiting semantic role labeling, WordNet and Wikipedia for coreference resolution
255
Citations
32
References
2006
Year
Unknown Venue
Natural Language ProcessingSemantic FeaturesSemantic Role LabelingEngineeringInformation RetrievalMachine LearningEntity DisambiguationComputational LinguisticsNlp TaskCoreference Resolution SystemCoreference ResolutionLanguage StudiesSemanticsSemantic WebNamed-entity RecognitionLinguisticsText MiningMachine Translation
In this paper we present an extension of a machine learning based coreference resolution system which uses features induced from different semantic knowledge sources. These features represent knowledge mined from WordNet and Wikipedia, as well as information about semantic role labels. We show that semantic features indeed improve the performance on different referring expression types such as pronouns and common nouns.
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