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Increasing Reliability of Basic R-Estimates in Deformation Analysis

机译:基本R估计在变形分析中的可靠性不断提高

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The paper concerns the Hodges-Lehmann weighted estimates which are one of the basic R-estimates applied in deformation analysis. We are interested how increasing reliability of the Hodges-Lehmann weighted estimate of the shift influences the distribution and the accuracy of the estimated point displacements. We examine a simulated levelling network and assume that the outliers may occur in both measurement epochs. We consider two variants of the Hodges-Lehmann weighted estimates and the classical non-robust approach, i.e., the least squares estimates. The results show that a new variant of the Hodges-Lehmann weighted estimates with "strengthening" some height differences (where it is possible) and applying the weighted mean results in better accuracy and smaller excess kurtosis in relation to the basic variant of the Hodges-Lehmann weighted estimates. The new estimate variant has superior reliability, so it may be advisable and helpful in some problems in deformation analysis.
机译:本文涉及Hodges-Lehmann加权估计,这是在变形分析中应用的基本R估计之一。我们感兴趣的是,对偏移的Hodges-Lehmann加权估计的增加的可靠性如何影响估计点位移的分布和准确性。我们检查了一个模拟的调平网络,并假设在两个测量时期都可能出现异常值。我们考虑了Hodges-Lehmann加权估计和经典非稳健方法的两种变体,即最小二乘估计。结果表明,Hodges-Lehmann加权估计的新变体“加强”了一些高度差(在可能的情况下),并且应用了加权均值,相对于Hodges-Lehmann的基本变体,其精度更高,峰度更小。雷曼加权估计。新的估计变量具有出色的可靠性,因此在变形分析中的某些问题上可能是明智的且有帮助的。

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