conference-paper

Improving Conversational Recommender Systems via Knowledge Graph based Semantic Fusion

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Abstract

Conversational recommender systems (CRS) aim to recommend high-quality items to users through interactive conversations. Although several efforts have been made for CRS, two major issues still remain to be solved. First, the conversation data itself lacks of sufficient contextual information for accurately understanding users' preference. Second, there is a semantic gap between natural language expression and item-level user preference.

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Publication details

DOI
10.1145/3394486.3403143
OpenAlex
W3080122044
Document type
conference-paper
Language
EN
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