A Reinforcement Learning-driven Translation Model for Search-Oriented Conversational Systems

August 29, 2018 ยท Declared Dead ยท ๐Ÿ› SCAI@EMNLP

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Authors Wafa Aissa, Laure Soulier, Ludovic Denoyer arXiv ID 1809.01495 Category cs.CL: Computation & Language Cross-listed cs.LG, stat.ML Citations 7 Venue SCAI@EMNLP Last Checked 5 months ago
Abstract
Search-oriented conversational systems rely on information needs expressed in natural language (NL). We focus here on the understanding of NL expressions for building keyword-based queries. We propose a reinforcement-learning-driven translation model framework able to 1) learn the translation from NL expressions to queries in a supervised way, and, 2) to overcome the lack of large-scale dataset by framing the translation model as a word selection approach and injecting relevance feedback in the learning process. Experiments are carried out on two TREC datasets and outline the effectiveness of our approach.
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