Forecasting ASEAN tourist arrivals in Malaysia using different time series models
In this study three time series models are used for forecasting monthly ASEAN tourist arrivals in Malaysia from January 1999 to December 2015. Brunei, Thailand and Vietnam of ASEAN country selected as case study. This paper compares the forecasting accuracy of seasonal autoregressive integrated movi...
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my.utm.919312021-08-09T08:46:06Z http://eprints.utm.my/id/eprint/91931/ Forecasting ASEAN tourist arrivals in Malaysia using different time series models Rafidah, A. Mazuin, E. Shabri, A. QA Mathematics In this study three time series models are used for forecasting monthly ASEAN tourist arrivals in Malaysia from January 1999 to December 2015. Brunei, Thailand and Vietnam of ASEAN country selected as case study. This paper compares the forecasting accuracy of seasonal autoregressive integrated moving average (SARIMA), Support Vector Machine (SVM) and Wavelet Support Vector Machine (WSVM) and Empirical Mode Decomposition with Wavelet Support Vector Machine (EMD_WSVM) using root mean square error (RMSE) and mean absolute percentage error (MAPE) criterion. Moreover, correlation test has also been carried out to strengthen decisions, and to check accuracy of various forecasting models. Based on the forecasting performance of all four models, hybrid model SARIMA and EMD_WSVM are found to be best models as compare to single model SVM and hybrid model WSVM. Blue Eyes Intelligence Engineering and Sciences Publication 2019 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/91931/1/AniShabri2019_ForecastingASEANTouristArrivals.pdf Rafidah, A. and Mazuin, E. and Shabri, A. (2019) Forecasting ASEAN tourist arrivals in Malaysia using different time series models. International Journal of Engineering and Advanced Technology, 8 (6). ISSN 2249-8958 http://www.dx.doi.org/10.35940/ijeat.F1101.0986S319 DOI: 10.35940/ijeat.F1101.0986S319 |
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QA Mathematics Rafidah, A. Mazuin, E. Shabri, A. Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
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In this study three time series models are used for forecasting monthly ASEAN tourist arrivals in Malaysia from January 1999 to December 2015. Brunei, Thailand and Vietnam of ASEAN country selected as case study. This paper compares the forecasting accuracy of seasonal autoregressive integrated moving average (SARIMA), Support Vector Machine (SVM) and Wavelet Support Vector Machine (WSVM) and Empirical Mode Decomposition with Wavelet Support Vector Machine (EMD_WSVM) using root mean square error (RMSE) and mean absolute percentage error (MAPE) criterion. Moreover, correlation test has also been carried out to strengthen decisions, and to check accuracy of various forecasting models. Based on the forecasting performance of all four models, hybrid model SARIMA and EMD_WSVM are found to be best models as compare to single model SVM and hybrid model WSVM. |
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Article |
author |
Rafidah, A. Mazuin, E. Shabri, A. |
author_facet |
Rafidah, A. Mazuin, E. Shabri, A. |
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Rafidah, A. |
title |
Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
title_short |
Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
title_full |
Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
title_fullStr |
Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
title_full_unstemmed |
Forecasting ASEAN tourist arrivals in Malaysia using different time series models |
title_sort |
forecasting asean tourist arrivals in malaysia using different time series models |
publisher |
Blue Eyes Intelligence Engineering and Sciences Publication |
publishDate |
2019 |
url |
http://eprints.utm.my/id/eprint/91931/1/AniShabri2019_ForecastingASEANTouristArrivals.pdf http://eprints.utm.my/id/eprint/91931/ http://www.dx.doi.org/10.35940/ijeat.F1101.0986S319 |
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