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Cross-Domain Sequential Recommendation (CDSR) aims to predict future interactions based on user's historical sequential interactions from multiple domains. Generally, a key challenge of CDSR is how to mine precise cross-domain user preference based on the intra-sequence and inter-sequence item interactions. Existing works first learn single-domain user preference only with intra-sequence item interactions, and then build a transferring module to obtain cross-domain user preference. However, such a pipeline and implicit solution can be severely limited by the bottleneck of the designed transferring module, and ignores to consider inter-sequence item relationships.
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Jiangxia Cao
Xin Cong
Jiawei Sheng
University of Chinese Academy of Sciences
Institute of Information Engineering
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Cao et al. (Sun,) studied this question.
www.synapsesocial.com/papers/69d9a5d8387cf70698684f69 — DOI: https://doi.org/10.1145/3511808.3557262