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Uncertainty evaluation of distributed Large-Scale-Metrology systems by a Monte Carlo approach

机译:蒙特卡罗方法对分布式大规模计量系统的不确定性评估

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摘要

Distributed systems for Large-Scale-Metrology applications generally include a set of angular and/or distance sensors, distributed around the measurement volume, and some targets to be localized, in contact with the measured object's surface. For these systems, estimating the uncertainty in target localization is far from trivial, as it may be affected by several factors: uncertainty in sensor calibration and angular/distance measurements, relative position between targets and sensors, etc. This paper proposes a novel approach based on the combined use of the Multivariate Law of Propagation of Uncertainty and Monte Carlo method. Preliminary results and experimental tests are presented and discussed. (C) 2016 CIRP.
机译:用于大规模计量学应用的分布式系统通常包括一组围绕测量空间分布的角度和/或距离传感器,以及一些与测量对象的表面接触的待定位目标。对于这些系统,估计目标定位的不确定性并非易事,因为它可能受以下几个因素的影响:传感器校准和角度/距离测量的不确定性,目标与传感器之间的相对位置等。本文提出了一种新颖的方法不确定性的多元传播定律和蒙特卡罗方法的组合使用。初步结果和实验测试进行了介绍和讨论。 (C)2016 CIRP。

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