确定最佳排水数据预测模型的新统计检验——以伊拉克底格里斯河和幼发拉底河为例

Q3 Engineering
A. Naser, W. A. Abidalla
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引用次数: 0

摘要

在这项研究中,使用具有常数和周期自回归系数的自回归(AR)模型分析了四个仪表(摩苏尔、巴格达、库特和胡萨亚巴)的时间序列。研究发现,Mosul、巴格达和Husaybah规范的最佳模型是具有周期自回归系数的AR(2),而Kut规范的最佳模式是具有恒定自回归系数。还建议根据残差自相关值(独立正态变量)确定最合适的模型,并将其与残差自相关图rk(ξ)和两种测试进行比较:AIC测试和组合缺失测试。得出的结论是,建议的测试更准确、更可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Statistical Test to Determine the Best Model for Forecasting Water Discharge Data: Tigris and Euphrates Rivers in Iraq as a Study Case
In this research, the time series were analysed for four gauges (Mosul, Baghdad, Kut, and Husayabah) using autoregressive (AR) models with constant and periodic autoregressive coefficients. It was found that the best model for Mosul, Baghdad, and Husaybah gauges is AR (2) with periodic autoregressive coefficients, while the best model for the Kut gauge was AR (2) with constant autoregressive coefficients. The test was also suggested to determine the most appropriate model based on the values of autocorrelation of residuals (independent normal variable) and it was compared with the drawings of correlograms of autocorrelation of residuals rk(ξ) and with two tests: the AIC test and the portmanteau lack test. It was concluded that the suggested test was more accurate and more reliable.
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来源期刊
Instrumentation Mesure Metrologie
Instrumentation Mesure Metrologie Engineering-Engineering (miscellaneous)
CiteScore
1.70
自引率
0.00%
发文量
25
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