An Approach for Passengers Forecasting Using Fuzzy Time Series
At certain times the number of passengers is very difficult to predict. There was a time when the number of passengers occurred a very significant surge. However, there are times when the number of passengers is drastically reduced. This is caused by many factors including time including the holiday...
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my-aeu-eprints.8592021-04-06T00:59:39Z http://ur.aeu.edu.my/859/ An Approach for Passengers Forecasting Using Fuzzy Time Series Undang, Syaripudin Wildan Budiawan, Zulfikar W., Uriawan R. A, Nugraha HF Commerce At certain times the number of passengers is very difficult to predict. There was a time when the number of passengers occurred a very significant surge. However, there are times when the number of passengers is drastically reduced. This is caused by many factors including time including the holiday season, holidays, and so on. As for other factors such as natural disasters, endemic diseases, and others. The number of passengers must be proportional to the number of vehicles that have been prepared. The company must consider the condition of the vehicle and also the physical condition of the driver. The aim of this study is to conduct passenger forecasting on a coming day. The methodology used is Fuzzy Time Series. The result of the experiment shows that this model has the accuracy of the difference between predictions with real data using PE which is equal to 34.6%. 2021 Conference or Workshop Item PeerReviewed text en http://ur.aeu.edu.my/859/1/Syaripudin_2021_IOP_Conf._Ser.__Mater._Sci._Eng._1098_032053-2-7.pdf Undang, Syaripudin and Wildan Budiawan, Zulfikar and W., Uriawan and R. A, Nugraha (2021) An Approach for Passengers Forecasting Using Fuzzy Time Series. In: The 5th Annual Applied Science and Engineering Conference, Bandung, Indonesia. |
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HF Commerce Undang, Syaripudin Wildan Budiawan, Zulfikar W., Uriawan R. A, Nugraha An Approach for Passengers Forecasting Using Fuzzy Time Series |
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At certain times the number of passengers is very difficult to predict. There was a time when the number of passengers occurred a very significant surge. However, there are times when the number of passengers is drastically reduced. This is caused by many factors including time including the holiday season, holidays, and so on. As for other factors such as natural disasters, endemic diseases, and others. The number of passengers must be proportional to the number of
vehicles that have been prepared. The company must consider the condition of the vehicle and also the physical condition of the driver. The aim of this study is to conduct passenger forecasting on a coming day. The methodology used is Fuzzy Time Series. The result of the experiment shows that this model has the accuracy of the difference between predictions with real data using
PE which is equal to 34.6%. |
format |
Conference or Workshop Item |
author |
Undang, Syaripudin Wildan Budiawan, Zulfikar W., Uriawan R. A, Nugraha |
author_facet |
Undang, Syaripudin Wildan Budiawan, Zulfikar W., Uriawan R. A, Nugraha |
author_sort |
Undang, Syaripudin |
title |
An Approach for Passengers Forecasting Using Fuzzy Time Series |
title_short |
An Approach for Passengers Forecasting Using Fuzzy Time Series |
title_full |
An Approach for Passengers Forecasting Using Fuzzy Time Series |
title_fullStr |
An Approach for Passengers Forecasting Using Fuzzy Time Series |
title_full_unstemmed |
An Approach for Passengers Forecasting Using Fuzzy Time Series |
title_sort |
approach for passengers forecasting using fuzzy time series |
publishDate |
2021 |
url |
http://ur.aeu.edu.my/859/1/Syaripudin_2021_IOP_Conf._Ser.__Mater._Sci._Eng._1098_032053-2-7.pdf http://ur.aeu.edu.my/859/ |
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1696979750564659200 |