Title of article :
Evaluation of forecasting methods for intermittent parts demand in the field of aviation: a predictive model
Author/Authors :
Adel A. Ghobbar، نويسنده , , Chris H. Friend، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2003
Pages :
18
From page :
2097
To page :
2114
Abstract :
Owing to the sporadic nature of demand for aircraft maintenance repair parts, airline operators perceive difficulties in forecasting and are still looking for superior forecasting methods. This paper deals with techniques applicable to predicting spare parts demand for airline fleets. The experimental results of 13 forecasting methods, including those used by aviation companies, are examined and clarified through statistical analysis. The general linear model approach is used to explain the variation attributable to different experimental factors and their interactions. Actual historical data for hard-time and condition-monitoring components from an airlines operator are used, in order to compare different forecasting methods when facing intermittent demand. The results confirm the continued superiority of the weighted moving average, Holt and Croston method for intermittent demand, whereas most commonly used methods by airlines are found to be questionable, consistently producing poor forecasting performance. We have, however, devised a new approach to forecasting evaluation, a predictive error-forecasting model which compares and evaluates forecasting methods based on their factor levels when faced with intermittent demand. A simple example is presented to illustrate the performance of the mathematical model. It is suggested that these findings may be applicable to other industrial sectors, which have similar demand patterns to those of airlines.
Keywords :
Aircraft parts inventory , Forecasting intermittent demand , Aircraft maintenance engineering
Journal title :
Computers and Operations Research
Serial Year :
2003
Journal title :
Computers and Operations Research
Record number :
927459
Link To Document :
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