Tourism demand forecasting with spatiotemporal features
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DOI: 10.1016/j.annals.2022.103384
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Cited by:
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- Dong Zhang & Pengkun Wu & Chong Wu & Eric W. T. Ngai, 2024. "Forecasting duty-free shopping demand with multisource data: a deep learning approach," Annals of Operations Research, Springer, vol. 339(1), pages 861-887, August.
- Haodong Sun & Yang Yang & Yanyan Chen & Xiaoming Liu & Jiachen Wang, 2023. "Tourism demand forecasting of multi-attractions with spatiotemporal grid: a convolutional block attention module model," Information Technology & Tourism, Springer, vol. 25(2), pages 205-233, June.
- Xu, Shilin & Liu, Yang & Jin, Chun, 2023. "Forecasting daily tourism demand with multiple factors," Annals of Tourism Research, Elsevier, vol. 103(C).
- Hooper, Alison & Schweiker, Claire, 2024. "Family child care educators’ experiences and decision-making related to serving children during COVID-19 and implications for supporting educators after the pandemic," Children and Youth Services Review, Elsevier, vol. 161(C).
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Keywords
Tourist demand forecasting; Spatial effects; Graph convolutional network; Long short-term memory;All these keywords.
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