Multi-representation Ensembles and Delayed SGD Updates Improve Syntax-based NMT
2018-05-01ACL 2018Unverified0· sign in to hype
Danielle Saunders, Felix Stahlberg, Adria de Gispert, Bill Byrne
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We explore strategies for incorporating target syntax into Neural Machine Translation. We specifically focus on syntax in ensembles containing multiple sentence representations. We formulate beam search over such ensembles using WFSTs, and describe a delayed SGD update training procedure that is especially effective for long representations like linearized syntax. Our approach gives state-of-the-art performance on a difficult Japanese-English task.