Please use this identifier to cite or link to this item: https://doi.org/10.24963/ijcai.2017/562
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dc.titleSWIM: A simple word interaction model for implicit discourse relation recognition
dc.contributor.authorLei, W
dc.contributor.authorWang, X
dc.contributor.authorLiu, M
dc.contributor.authorIlievski, I
dc.contributor.authorHe, X
dc.contributor.authorKan, MY
dc.date.accessioned2022-07-30T01:48:39Z
dc.date.available2022-07-30T01:48:39Z
dc.date.issued2017-08
dc.identifier.citationLei, W, Wang, X, Liu, M, Ilievski, I, He, X, Kan, MY (2017-08). SWIM: A simple word interaction model for implicit discourse relation recognition. Twenty-Sixth International Joint Conference on Artificial Intelligence 0 : 4026-4032. ScholarBank@NUS Repository. https://doi.org/10.24963/ijcai.2017/562
dc.identifier.isbn9780999241103
dc.identifier.issn10450823
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/229523
dc.description.abstractCapturing the semantic interaction of pairs of words across arguments and proper argument representation are both crucial issues in implicit discourse relation recognition. The current state-of-the-art represents arguments as distributional vectors that are computed via bi-directional Long Short-Term Memory networks (BiLSTMs), known to have significant model complexity. In contrast, we demonstrate that word-weighted averaging can encode argument representation which can be incorporated with word pair information efficiently. By saving an order of magnitude in parameters and eschewing the recurrent structure, our proposed model achieves equivalent performance, but trains seven times faster.
dc.publisherInternational Joint Conferences on Artificial Intelligence Organization
dc.sourceElements
dc.typeConference Paper
dc.date.updated2022-07-19T07:57:11Z
dc.contributor.departmentDEPARTMENT OF COMPUTER SCIENCE
dc.contributor.departmentINDUSTRIAL SYSTEMS ENGINEERING AND MANAGEMENT
dc.description.doi10.24963/ijcai.2017/562
dc.description.sourcetitleTwenty-Sixth International Joint Conference on Artificial Intelligence
dc.description.volume0
dc.description.page4026-4032
dc.published.statePublished
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