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首页> 外文期刊>Revista Brasileira de Meteorologia >Removing the influence of the serial correlation on the Mann-Kendall test
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Removing the influence of the serial correlation on the Mann-Kendall test

机译:消除串行相关性对Mann-Kendall检验的影响

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The Pre-Whitening (PW), the Trend-Free Pre-Whitening (TFPW) and the Modified Trend-Free Pre-Whitening (MTFPW) were developed to remove the influence of serial correlations on the Mann-Kendall trend test. The main purpose of this study was to compare the performance of these algorithms for evaluating trends in auto-correlated series. The PW, TFPW and MTFPW were also applied to the monthly values of the rainfall (Pre), minimum (Tmin) and maximum (Tmax) air temperature data obtained from the weather station of Ribeir?o Preto, State of S?o Paulo, Brazil. Sets of Monte Carlo simulations were carried out to evaluate the occurrence of the type I and the type II errors obtained from these three algorithms. The TFPW has the highest power. However, it also presented the highest occurrence of type I errors. The PW clearly limits the influence of serial correlation on the occurrence of type I errors. Nevertheless, this feature is accomplished at a cost of a great reduction of its ability to detect trends. The MTFPW leads to a better balance between the probabilities of both statistical errors. It was also concluded that the hypothesis of the presence of no climate change in the location of Ribeir?o Pareto cannot be accepted.
机译:开发了预增白(PW),无趋势预增白(TFPW)和修改后的无趋势预增白(MTFPW),以消除串行相关性对Mann-Kendall趋势测试的影响。这项研究的主要目的是比较这些算法的性能,以评估自相关序列的趋势。 PW,TFPW和MTFPW还应用于从圣保罗州里贝里奥·普雷托气象站获得的降雨量(Pre),最小(Tmin)和最大(Tmax)空气温度数据的月度值。巴西。进行了一系列蒙特卡洛模拟,以评估从这三种算法获得的I型和II型错误的发生。 TFPW具有最高的功率。但是,它也显示出I型错误的发生率最高。 PW明显限制了串行相关性对I型错误发生的影响。但是,此功能的实现是以大大降低其检测趋势的能力为代价的。 MTFPW可以在两个统计错误的概率之间实现更好的平衡。还得出结论,在里贝里奥·帕累托地区不存在气候变化的假说不能被接受。

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