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Modeling High-order Interactions across Multi-interests for Micro-video Recommendation

1 April 2021
D. Yao
Shengyu Zhang
Zhou Zhao
W. Fan
Jieming Zhu
Xiuqiang He
Fei Wu
    HAI
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Abstract

Personalized recommendation system has become pervasive in various video platform. Many effective methods have been proposed, but most of them didn't capture the user's multi-level interest trait and dependencies between their viewed micro-videos well. To solve these problems, we propose a Self-over-Co Attention module to enhance user's interest representation. In particular, we first use co-attention to model correlation patterns across different levels and then use self-attention to model correlation patterns within a specific level. Experimental results on filtered public datasets verify that our presented module is useful.

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