An Attentional Recurrent Neural Network for Personalized Next Location Recommendation
Qing Guo, Zhu Sun, Jie Zhang, Yin-Leng Theng
摘要
Most existing studies on next location recommendation propose to model the sequential regularity of check-in sequences, but suffer from the severe data sparsity issue where most locations have fewer than five following locations. To this end, we propose an Attentional Recurrent Neural Network (ARNN) to jointly model both the sequential regularity and transition regularities of similar locations (neighbors). In particular, we first design a meta-path based random walk over a novel knowledge graph to discover location neighbors based on heterogeneous factors. A recurrent neural network is then adopted to model the sequential regularity by capturing various contexts that govern user mobility. Meanwhile, the transition regularities of the discovered neighbors are integrated via the attention mechanism, which seamlessly cooperates with the sequential regularity as a unified recurrent framework. Experimental results on multiple real-world datasets demonstrate that ARNN outperforms state-of-the-art methods.
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引用它的顶会 Paper9
- STAN: Spatio-Temporal Attention Network for Next Location RecommendationYingtao Luo, Qiang Liu, Zhaocheng LiuWWW 2021 · 被引用 438 次
- MobTCast: Leveraging Auxiliary Trajectory Forecasting for Human Mobility PredictionHao Xue, Flora D. Salim, Yongli Ren, Nuria OliverNeurIPS 2021 · 被引用 106 次
- Next POI Recommendation with Dynamic Graph and Explicit DependencyFeiyu Yin, Yong Liu, Zhiqi Shen, Lisi Chen 等AAAI 2023 · 被引用 81 次
- Linear-Time Graph Neural Networks for Scalable RecommendationsJiahao Zhang, Rui Xue, Wenqi Fan, Xin Xu 等WWW 2024 · 被引用 63 次
- Spatio-Temporal Urban Knowledge Graph Enabled Mobility PredictionHuandong Wang, Qiaohong Yu, Yu Liu, Depeng Jin 等UbiComp 2022 · 被引用 56 次
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