Learning Daily Human Mobility with a Transformer-Based Model
Weiying Wang,
Toshihiro Osaragi
Abstract:The generation and prediction of daily human mobility patterns have raised significant interest in many scientific disciplines. Using various data sources, previous studies have examined several deep learning frameworks, such as the RNN and GAN, to synthesize human movements. Transformer models have been used frequently for image analysis and language processing, while the applications of these models on human mobility are limited. In this study, we construct a transformer model, including a self-attention-bas… Show more
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