Publication | Open Access
Constructing Information Networks Using One Single Model
115
Citations
14
References
2014
Year
EngineeringNetwork AnalysisNetwork ModelSemantic WebCorpus LinguisticsText MiningNatural Language ProcessingInformation ModelData ScienceComputational LinguisticsNamed-entity RecognitionSocial Network AnalysisEntity DisambiguationKnowledge DiscoveryComputer ScienceInformation ManagementNetwork TheoryInformation ExtractionSemantic ParsingInformation NetworkNetwork ScienceInformation Network RepresentationRelationship ExtractionBusiness
In this paper, we propose a new framework that unifies the output of three information extraction (IE) tasks - entity mentions, relations and events as an information network representation, and extracts all of them using one single joint model based on structured prediction. This novel formulation allows different parts of the information network fully interact with each other. For example, many relations can now be considered as the resultant states of events. Our approach achieves substantial improvements over traditional pipelined approaches, and significantly advances state-of-the-art end-toend event argument extraction.
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