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A graph neural network incorporating spatio-temporal information for location recommendation

  • 15-08-2023
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Abstract

The article introduces STAGNN, a graph neural network model designed to enhance location recommendations by incorporating both spatial and temporal information. Traditional models have relied heavily on spatial data, but STAGNN addresses this gap by integrating temporal context, allowing for more accurate and personalized recommendations. The authors highlight the importance of considering temporal information in location-based services and demonstrate the superior performance of STAGNN through extensive experiments on real-world datasets. The model's innovative use of spatio-temporal relation matrices and self-attentive aggregation layers sets it apart from existing approaches, making it a significant contribution to the field of location recommendation systems.

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Title
A graph neural network incorporating spatio-temporal information for location recommendation
Authors
Yunliang Chen
Guoquan Huang
Yuewei Wang
Xiaohui Huang
Geyong Min
Publication date
15-08-2023
Publisher
Springer US
Published in
World Wide Web / Issue 5/2023
Print ISSN: 1386-145X
Electronic ISSN: 1573-1413
DOI
https://doi.org/10.1007/s11280-023-01193-9
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