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SARIMA damp trend grey forecasting model for airline industry

机译:航空业的SARIMA趋势灰色预测模型

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The aim of this paper is to propose a new model that improves the Damp Trend Grey Model (DTGM) with a dynamic seasonal damping factor to forecast routes passengers demand (pax) in the air transportation industry. The model is called the SARIMA Damp Trend Grey Forecasting Model (SDTGM). In the DTGM, the damp trend factor is a static smoothing factor because it does not change over time, and therefore, it cannot capture the dynamic behavior of time series data. For this reason, the modification consists in using the trend and seasonality effects of time series data to calculate a dynamic damp trend factor as time grows. The DTGM damping factor is based on the forecasted data obtained by the GM(1,1) model; otherwise, the SDTGM calculates a seasonal damping factor based on historical data using a large amount of data points for short lead-times. The SDTGM has less uncertainty than the DTGM. The simulation results show that the SDTGM captures the seasonality effect and does not allow the forecast to exponentially grow. The SDTGM forecasts more reasonable routes pax for short lead-times when having a large amount of data points than the DTGM. The United States domestic air transport market data are used to compare the performance of the DTGM against the proposed SDTGM.
机译:本文的目的是提出一种新模型,该模型使用动态季节性阻尼因子来改进阻尼趋势灰色模型(DTGM),以预测航空运输行业的航线乘客需求(乘客)。该模型称为SARIMA阻尼趋势灰色预测模型(SDTGM)。在DTGM中,阻尼趋势因子是静态平滑因子,因为它不会随时间变化,因此无法捕获时间序列数据的动态行为。因此,修改包括使用时间序列数据的趋势和季节性影响来计算随时间增长的动态阻尼趋势因子。 DTGM阻尼因子基于GM(1,1)模型获得的预测数据;否则,SDTGM会根据历史数据使用短提前期的大量数据点来计算季节性阻尼因子。 SDTGM的不确定性比DTGM小。仿真结果表明,SDTGM捕获了季节性影响,并且不允许预测呈指数增长。与DTGM相比,当具有大量数据点时,SDTGM可以在更短的交货时间内预测出更合理的路线费用。美国国内航空运输市场数据用于比较DTGM与提议的SDTGM的性能。

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