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    A Spatial-Temporal Self-Attention Network (STSAN) for Location Prediction
    with Shuang Wang, AnLiang Li, Shuai Xie, WenZhu Li, Shuai Yao, and Muhammad Asif
    Complexity 2021 1-13. 2021.
    With the popularity of location-based social networks, location prediction has become an important task and has gained significant attention in recent years. However, how to use massive trajectory data and spatial-temporal context information effectively to mine the user’s mobility pattern and predict the users’ next location is still unresolved. In this paper, we propose a novel network named STSAN, which can integrate spatial-temporal information with the self-attention for location prediction…Read more