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Sequential/Session-based Recommendations: Challenges, Approaches, Applications and Opportunities (2205.10759v1)

Published 22 May 2022 in cs.IR, cs.AI, and cs.LG

Abstract: In recent years, sequential recommender systems (SRSs) and session-based recommender systems (SBRSs) have emerged as a new paradigm of RSs to capture users' short-term but dynamic preferences for enabling more timely and accurate recommendations. Although SRSs and SBRSs have been extensively studied, there are many inconsistencies in this area caused by the diverse descriptions, settings, assumptions and application domains. There is no work to provide a unified framework and problem statement to remove the commonly existing and various inconsistencies in the area of SR/SBR. There is a lack of work to provide a comprehensive and systematic demonstration of the data characteristics, key challenges, most representative and state-of-the-art approaches, typical real-world applications and important future research directions in the area. This work aims to fill in these gaps so as to facilitate further research in this exciting and vibrant area.

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Authors (6)
  1. Shoujin Wang (40 papers)
  2. Qi Zhang (785 papers)
  3. Liang Hu (64 papers)
  4. Xiuzhen Zhang (35 papers)
  5. Yan Wang (733 papers)
  6. Charu Aggarwal (38 papers)
Citations (32)