Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying

The purpose of this study was to forecast model for total hour’s demands of forklift at Kemaman Supply Base from year January 2003 until April 2013. This is forecast model based on objective in the study. The objectives of this study are to identify and describe the underlying structure and the phen...

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Main Author: Ying, Ainaliana
Format: Monograph
Language:English
Published: Bachelor of Science (Hons.) Statistics 2015
Subjects:
Online Access:https://ir.uitm.edu.my/id/eprint/34410/
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author Ying, Ainaliana
author_facet Ying, Ainaliana
author_sort Ying, Ainaliana
building UiTM Institutional Repository
collection Online Access
description The purpose of this study was to forecast model for total hour’s demands of forklift at Kemaman Supply Base from year January 2003 until April 2013. This is forecast model based on objective in the study. The objectives of this study are to identify and describe the underlying structure and the phenomenon as depicted by the sequence of data, to determine the best model that can be used to forecast the total hours of demand forklift by client at KSB, and to forecast the total hours of demand forklift from KSB’s clients for two years forward. The dataset have 132 monthly observations. The dataset is secondary data was collected by SAP System. Forklift is an industry handling vehicle which is refers to various kinds of wheeled cargo handling vehicles to do loading and unloading goods. Port operation process has always uncertain due to the seasonal and fluctuating throughput demand, plus with the delaying in the daily operation, breakdown and maintenance of the equipment. Forklift demand and other heavy machineries are the most important equipment when operating the logistic industries especially at terminal. Demands of forklift at port increase due to the increase the activities of drillings for oil and gas industries. From the analysis, it is found that the data been influenced by trend component and there is seasonal component. Then, comparison has done to test two methods that are Univariate Techniques Modeling and Box-Jenkins Methodology. So, it was found that the best model for forecasting if Holt-Winters’ Multiplicative technique. Then, the model has been used to forecast total hours demand of forklift at KSB for twelve month in year May 2014 until April 2015. The future values for demand forklift at KSB keep increasing time by time. All the objectives for this study achieved
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institution Universiti Teknologi MARA
institution_category Local University
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publishDate 2015
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spelling uitm-344102025-04-30T23:19:02Z https://ir.uitm.edu.my/id/eprint/34410/ Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying Ying, Ainaliana TJ Mechanical engineering and machinery Hoisting and conveying machinery Lifting and pressing machinery The purpose of this study was to forecast model for total hour’s demands of forklift at Kemaman Supply Base from year January 2003 until April 2013. This is forecast model based on objective in the study. The objectives of this study are to identify and describe the underlying structure and the phenomenon as depicted by the sequence of data, to determine the best model that can be used to forecast the total hours of demand forklift by client at KSB, and to forecast the total hours of demand forklift from KSB’s clients for two years forward. The dataset have 132 monthly observations. The dataset is secondary data was collected by SAP System. Forklift is an industry handling vehicle which is refers to various kinds of wheeled cargo handling vehicles to do loading and unloading goods. Port operation process has always uncertain due to the seasonal and fluctuating throughput demand, plus with the delaying in the daily operation, breakdown and maintenance of the equipment. Forklift demand and other heavy machineries are the most important equipment when operating the logistic industries especially at terminal. Demands of forklift at port increase due to the increase the activities of drillings for oil and gas industries. From the analysis, it is found that the data been influenced by trend component and there is seasonal component. Then, comparison has done to test two methods that are Univariate Techniques Modeling and Box-Jenkins Methodology. So, it was found that the best model for forecasting if Holt-Winters’ Multiplicative technique. Then, the model has been used to forecast total hours demand of forklift at KSB for twelve month in year May 2014 until April 2015. The future values for demand forklift at KSB keep increasing time by time. All the objectives for this study achieved Bachelor of Science (Hons.) Statistics 2015-01 Monograph NonPeerReviewed text en https://ir.uitm.edu.my/id/eprint/34410/1/34410.pdf Ying, Ainaliana (2015) Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying. (2015) Industrial Training. Bachelor of Science (Hons.) Statistics, Kota Bharu. (Unpublished)
spellingShingle TJ Mechanical engineering and machinery
Hoisting and conveying machinery
Lifting and pressing machinery
Ying, Ainaliana
Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title_full Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title_fullStr Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title_full_unstemmed Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title_short Univariate forecasting model on demand of forklift at PBKSB and Box-Jenkins Methodology / Ainaliana Ying
title_sort univariate forecasting model on demand of forklift at pbksb and box-jenkins methodology / ainaliana ying
topic TJ Mechanical engineering and machinery
Hoisting and conveying machinery
Lifting and pressing machinery
url https://ir.uitm.edu.my/id/eprint/34410/