Please use this identifier to cite or link to this item: https://doi.org/10.1109/IJCNN.2012.6252548
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dc.titleConnective prediction using machine learning for implicit discourse relation classification
dc.contributor.authorXu, Y.
dc.contributor.authorLan, M.
dc.contributor.authorLu, Y.
dc.contributor.authorNiu, Z.Y.
dc.contributor.authorTan, C.L.
dc.date.accessioned2013-07-04T08:30:19Z
dc.date.available2013-07-04T08:30:19Z
dc.date.issued2012
dc.identifier.citationXu, Y.,Lan, M.,Lu, Y.,Niu, Z.Y.,Tan, C.L. (2012). Connective prediction using machine learning for implicit discourse relation classification. Proceedings of the International Joint Conference on Neural Networks. ScholarBank@NUS Repository. <a href="https://doi.org/10.1109/IJCNN.2012.6252548" target="_blank">https://doi.org/10.1109/IJCNN.2012.6252548</a>
dc.identifier.isbn9781467314909
dc.identifier.urihttp://scholarbank.nus.edu.sg/handle/10635/41557
dc.description.abstractImplicit discourse relation classification is a challenge task due to missing discourse connective. Some work directly adopted machine learning algorithms and linguistically informed features to address this task. However, one interesting solution is to automatically predict implicit discourse connective. In this paper, we present a novel two-step machine learning-based approach to implicit discourse relation classification. We first use machine learning method to automatically predict the discourse connective that can best express the implicit discourse relation. Then the predicted implicit discourse connective is used to classify the implicit discourse relation. Experiments on Penn Discourse Treebank 2.0 (PDTB) and Biomedical Discourse Relation Bank (BioDRB) show that our method performs better than the baseline system and previous work. © 2012 IEEE.
dc.description.urihttp://libproxy1.nus.edu.sg/login?url=http://dx.doi.org/10.1109/IJCNN.2012.6252548
dc.sourceScopus
dc.typeConference Paper
dc.contributor.departmentCOMPUTER SCIENCE
dc.description.doi10.1109/IJCNN.2012.6252548
dc.description.sourcetitleProceedings of the International Joint Conference on Neural Networks
dc.description.coden85OFA
dc.identifier.isiutNOT_IN_WOS
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