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Hypothesis Testing in Non-Linear Models Exemplified by the Planar Coordinate Transformations

机译:平面坐标变换示例的非线性模型中的假设检测

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In geodesy, hypothesis testing is applied to a wide area of applications e.g. outlier detection, deformation analysis or, more generally, model optimisation. Due to the possible far-reaching consequences of a decision, high statistical test power of such a hypothesis test is needed. The Neyman-Pearson lemma states that under strict assumptions the often-applied likelihood ratio test has highest statistical test power and may thus fulfill the requirement. The application, however, is made more difficult as most of the decision problems are non-linear and, thus, the probability density function of the parameters does not belong to the well-known set of statistical test distributions. Moreover, the statistical test power may change, if linear approximations of the likelihood ratio test are applied. The influence of the non-linearity on hypothesis testing is investigated and exemplified by the planar coordinate transformations. Whereas several mathematical equivalent expressions are conceivable to evaluate the rotation parameter of the transformation, the decisions and, thus, the probabilities of type 1 and 2 decision errors of the related hypothesis testing are unequal to each other. Based on Monte Carlo integration, the effective decision errors are estimated and used as a basis of valuation for linear and non-linear equivalents.
机译:在大地测量中,假设检测应用于广泛的应用领域。异常检测,变形分析或更一般性的模型优化。由于可能的决策可能的影响,需要这种假设测试的高统计测试功率。 Neyman-Pearson Lemma指出,在严格的假设下,经常施加的似然比测试具有最高的统计测试能力,因此可以实现要求。然而,由于大多数决策问题是非线性的,因此,参数的概率密度函数不属于已知的统计测试分布集的概率密度函数更加困难。此外,如果应用了似然比测试的线性近似,则统计测试功率可能会改变。通过平面坐标转换研究并举例说明非线性对假设检测的影响。虽然可以想到几种数学等效表达来评估变换的旋转参数,因此决定和相关假设检测的第1型决策误差的概率彼此不等。基于蒙特卡罗集成,估计有效的决策误差并用作线性和非线性等同物的估值基础。

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