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The probability of type I and type II errors in imprecise hypothesis testing with an application to geodetic deformation analysis

机译:不精确假设检验中I型和II型错误的可能性及其在大地变形分析中的应用

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摘要

In many engineering disciplines the interesting model parameters are estimated from a large number of heterogeneous and redundant observations by a 'least-squares adjustment. The significance of the model parameters, outlier detection and the model selection itself are checked within statistical hypothesis tests. The acceptance and the rejection of the hypothesis are strongly related with two types of errors. A type I error occurs if the null hypothesis is rejected, although it is true. A type II error occurs if the null hypothesis is accepted, although it is false. This paper proposes a general procedure to hypothesis testing in linear parameter estimation, if the uncertainty is considered by random variability and interval/fuzzy errors. The study focuses on the probability of type I and type II errors. The applied procedure is outlined in detail showing both theory and numerical examples for the parameterisation of a geodetic monitoring network (deformation analysis).
机译:在许多工程学科中,有趣的模型参数是通过“最小二乘平差”从大量异类和冗余观测值中估计出来的。在统计假设检验中检查了模型参数,异常值检测和模型选择本身的重要性。假设的接受和拒绝与两种类型的错误密切相关。如果拒绝原假设,则会发生I型错误,尽管它是正确的。如果接受零假设,则II型错误会发生,尽管它是错误的。如果不确定性是由随机变量和区间/模糊误差考虑的,则本文提出了一种在线性参数估计中进行假设检验的通用程序。该研究集中于I型和II型错误的可能性。详细概述了所应用的过程,显示了大地监测网络参数化(变形分析)的理论和数值示例。

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