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Estimation of Measurement Uncertainty of kinematic TLS Observation Process by means of Monte-Carlo Methods

机译:蒙特卡罗方法估算运动学TLS观测过程的测量不确定度

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摘要

In many cases, the uncertainty of output quantities may be computed by assuming that the distribution represented by the result of measurement and its associated standard uncertainty is a Gaussian. This assumption may be unjustified and the uncertainty of the output quantities determined in this way may be incorrect. One tool to deal with different distribution functions of the input parameters and the resulting mixed-distribution of the output quantities is given through the Monte Carlo techniques. The resulting empirical distribution can be used to approximate the theoretical distribution of the output quantities. All required moments of different orders can then be numerically determined. To evaluate the procedure of derivation and evaluation of output parameter uncertainties outlined in this paper, a case study of kinematic terrestrial laserscanning (k-TLS) will be discussed. This study deals with two main topics: the refined simulation of different configurations by taking different input parameters with diverse probability functions for the uncertainty model into account, and the statistical analysis of the real data in order to improve the physical observation models in case of k-TLS. The solution of both problems is essential for the highly sensitive and physically meaningful application of k-TLS techniques for monitoring of, e. g., large structures such as bridges.
机译:在许多情况下,可以通过假设由测量结果表示的分布及其相关的标准不确定性是高斯来计算输出量的不确定性。该假设可能是不合理的,以这种方式确定的输出量的不确定性可能是不正确的。通过蒙特卡洛技术给出了一种用于处理输入参数的不同分布函数以及输出量的最终混合分布的工具。所得的经验分布可用于近似输出量的理论分布。然后可以通过数值确定所有不同阶次所需的力矩。为了评估本文概述的输出参数不确定性的推导过程和评估,将讨论运动型地面激光扫描(k-TLS)的案例研究。这项研究涉及两个主要主题:考虑不确定性模型,通过考虑具有不同概率函数的不同输入参数,对不同配置进行精确模拟,以及对真实数据进行统计分析,以改进k情况下的物理观测模型。 -TLS。这两个问题的解决方案对于k-TLS技术的高度敏感和物理意义的应用(例如监控)至关重要。 g。大型结构,例如桥梁。

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