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20212026
most citedDisentangling Long and Short-Term Interests for Recommendation

119 citations · 224 across the 15 of their papers we have counts for

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Showing 2023Show all

10 papers · 1 filter

cs.IR2023★ 10 cited

LabelCraft: Empowering Short Video Recommendations with Automated Label Crafting

Yimeng Bai, Yang Zhang, Jing Lu +5

Short video recommendations often face limitations due to the quality of user feedback, which may not accurately depict user interests. To tackle this challenge, a new task has eme…

cs.IR2023

Inverse Learning with Extremely Sparse Feedback for Recommendation

Guanyu Lin, Chen Gao, Yu Zheng +8

Modern personalized recommendation services often rely on user feedback, either explicit or implicit, to improve the quality of services. Explicit feedback refers to behaviors like…

cs.IR2023★ 2 cited

Mixed Attention Network for Cross-domain Sequential Recommendation

Guanyu Lin, Chen Gao, Yu Zheng +8

In modern recommender systems, sequential recommendation leverages chronological user behaviors to make effective next-item suggestions, which suffers from data sparsity issues, es…

cs.IR2023★ 21 cited

Understanding and Modeling Passive-Negative Feedback for Short-video Sequential Recommendation

Yunzhu Pan, Chen Gao, Jianxin Chang +5

Sequential recommendation is one of the most important tasks in recommender systems, which aims to recommend the next interacted item with historical behaviors as input. Traditiona…

cs.IR2023★ 10 cited

Learning and Optimization of Implicit Negative Feedback for Industrial Short-video Recommender System

Yunzhu Pan, Nian Li, Chen Gao +5

Short-video recommendation is one of the most important recommendation applications in today's industrial information systems. Compared with other recommendation tasks, the enormou…

cs.IR2023★ 19 cited

Leveraging Watch-time Feedback for Short-Video Recommendations: A Causal Labeling Framework

Yang Zhang, Yimeng Bai, Jianxin Chang +6

With the proliferation of short video applications, the significance of short video recommendations has vastly increased. Unlike other recommendation scenarios, short video recomme…