Toward Knowledge-Enriched Conversational Recommendation SystemsDownload PDF

Anonymous

04 Mar 2022 (modified: 05 May 2023)NLP for ConvAIReaders: Everyone
Abstract: Conversational Recommendation Systems recommend items through language based interactions with users. In order to generate naturalistic conversations and effectively utilize knowledge graphs (KGs) containing background information, we propose a novel Bag-of-Entities loss, which encourages the generated utterances to mention concepts related to the item being recommended, such as the genre or director of a movie. We also propose an alignment loss to further integrate KG entities into the response generation network. Experiments on the large-scale REDIAL dataset demonstrate that the proposed system consistently outperforms state-of-the-art baselines.
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