Understanding and Predicting User Satisfaction with Conversational Recommender Systems
Clemencia Siro,
Mohammad Aliannejadi,
Maarten De Rijke
Abstract:User satisfaction depicts the effectiveness of a system from the user’s perspective. Understanding and predicting user satisfaction is vital for the design of user-oriented evaluation methods for conversational recommender systems (CRSs). Current approaches rely on turn-level satisfaction ratings to predict a user’s overall satisfaction with CRS. These methods assume that all users perceive satisfaction similarly, failing to capture the broader dialogue aspects that influence overall user satisfaction.
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