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Short-term forecasting of Japanese tourist inflow to South Korea using Google trends data
- Source :
- Journal of Travel & Tourism Marketing. 34:357-368
- Publication Year :
- 2016
- Publisher :
- Informa UK Limited, 2016.
-
Abstract
- We utilize the Internet search data from Google Trends to provide short-term forecasts for the inflow of Japanese tourists to South Korea. We construct the Google variable in a systematic way by combining keywords to minimize mean squared or mean absolute forecasting errors. We augment the Google variable to the standard time-series forecasting models and compare their forecasting accuracies. We find that Google-augmented models perform much better than the standard time-series models in terms of short-term forecasting accuracy. In particular, Google models show better out-of-sample forecasting performance than in-sample forecasting.
- Subjects :
- Marketing
business.industry
Computer science
05 social sciences
Inflow
Term (time)
ComputingMilieux_GENERAL
Variable (computer science)
Tourism, Leisure and Hospitality Management
0502 economics and business
Econometrics
050211 marketing
The Internet
Probabilistic forecasting
Autoregressive integrated moving average
business
Physics::Atmospheric and Oceanic Physics
050212 sport, leisure & tourism
Tourism
Subjects
Details
- ISSN :
- 15407306 and 10548408
- Volume :
- 34
- Database :
- OpenAIRE
- Journal :
- Journal of Travel & Tourism Marketing
- Accession number :
- edsair.doi...........daad753d5b27cf79299eb1843f29fd3f