Publication:

Learning Neural Templates for Text Generation

dash.affiliation.otherHarvard John A. Paulson School of Engineering and Applied Sciencesen_US
dash.licenseOAP
dc.contributor.authorWiseman, Sam
dc.contributor.authorShieber, Stuart
dc.contributor.authorRush, Alexander Sasha
dc.date.accessioned2019-07-03T14:53:35Z
dc.date.available2019-07-03T14:53:35Z
dc.date.issued2018-10
dc.description.abstractWhile neural, encoder-decoder models have had significant empirical success in text generation, there remain several unaddressed problems with this style of generation. Encoder-decoder models are largely (a) uninterpretable, and (b) difficult to control in terms of their phrasing or content. This work proposes a neural generation system using a hidden semimarkov model (HSMM) decoder, which learns latent, discrete templates jointly with learning to generate. We show that this model learns useful templates, and that these templates make generation both more interpretable and controllable. Furthermore, we show that this approach scales to real data sets and achieves strong performance nearing that of encoder-decoder text generation models.en_US
dc.description.versionAccepted Manuscripten_US
dc.identifier.citationWiseman, Sam, Stuart Shieber, and Alexander Rush. 2018. Learning Neural Templates for Text Generation. Proceedings of the 2018 Conference on Empirical Methods in Natural Language Processing, Brussels, Belgium, October 31-November 4, 2018.en_US
dc.identifier.doi10.18653/v1/d18-1356
dc.identifier.urihttp://nrs.harvard.edu/urn-3:HUL.InstRepos:40827359*
dc.language.isoen_USen_US
dc.publisherAssociation for Computational Linguisticsen_US
dc.relation.hasversionhttps://arxiv.org/abs/1808.10122en_US
dc.relation.journalProceedings of the 2018 Conference on Empirical Methods in Natural Language Processingen_US
dc.relation.projectProceedings of the 2018 Conference on Empirical Methods in Natural Language Processing (EMNLP 2018)en_US
dc.titleLearning Neural Templates for Text Generationen_US
dc.typeConference Paperen_US
dspace.entity.typePublication
oaire.licenseConditionOAP
relation.isAuthorOfPublicationbae2da6d-300e-402f-992f-dae127a7c1a5
relation.isAuthorOfPublication48d5c426-2437-4ad9-94a0-0395e6adda04
relation.isAuthorOfPublication.latestForDiscoverybae2da6d-300e-402f-992f-dae127a7c1a5

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