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Forecasting international tourism demand: a local spatiotemporal model

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  • Jiao, Xiaoying
  • Li, Gang
  • Chen, Jason Li

Abstract

This study investigates whether tourism forecasting accuracy is improved by incorporating spatial dependence and spatial heterogeneity. One- to three-step-ahead forecasts of tourist arrivals were generated using global and local spatiotemporal autoregressive models for 37 European countries and the forecasting performance was compared with that of benchmark models including autoregressive moving average, exponential smoothing and Naïve 1 models. For all forecasting horizons, the two spatial models outperformed the non-spatial models. The superior forecasting performance of the local model suggests that the full reflection of spatial heterogeneity can improve the accuracy of tourism forecasting.

Suggested Citation

  • Jiao, Xiaoying & Li, Gang & Chen, Jason Li, 2020. "Forecasting international tourism demand: a local spatiotemporal model," Annals of Tourism Research, Elsevier, vol. 83(C).
  • Handle: RePEc:eee:anture:v:83:y:2020:i:c:s0160738320300815
    DOI: 10.1016/j.annals.2020.102937
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