Semantic Refinement GRU-based Neural Language Generation for Spoken Dialogue Systems

June 01, 2017 ยท Declared Dead ยท ๐Ÿ› International Conference of the Pacific Association for Computaitonal Linguistics

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Authors Van-Khanh Tran, Le-Minh Nguyen arXiv ID 1706.00134 Category cs.CL: Computation & Language Citations 21 Venue International Conference of the Pacific Association for Computaitonal Linguistics Last Checked 4 months ago
Abstract
Natural language generation (NLG) plays a critical role in spoken dialogue systems. This paper presents a new approach to NLG by using recurrent neural networks (RNN), in which a gating mechanism is applied before RNN computation. This allows the proposed model to generate appropriate sentences. The RNN-based generator can be learned from unaligned data by jointly training sentence planning and surface realization to produce natural language responses. The model was extensively evaluated on four different NLG domains. The results show that the proposed generator achieved better performance on all the NLG domains compared to previous generators.
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