Aspect and Opinion Aware Abstractive Review Summarization with Reinforced Hard Typed Decoder

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Authors Yufei Tian, Jianfei Yu, Jing Jiang arXiv ID 2004.05755 Category cs.CL: Computation & Language Cross-listed cs.IR, cs.LG Citations 16 Venue International Conference on Information and Knowledge Management Last Checked 3 months ago
Abstract
In this paper, we study abstractive review summarization.Observing that review summaries often consist of aspect words, opinion words and context words, we propose a two-stage reinforcement learning approach, which first predicts the output word type from the three types, and then leverages the predicted word type to generate the final word distribution.Experimental results on two Amazon product review datasets demonstrate that our method can consistently outperform several strong baseline approaches based on ROUGE scores.
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