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Uncertainty characterization under measurement errors using maximum likelihood estimation: cantilever beam end-to-end UQ test problem

机译:使用最大似然估计的测量误差下的不确定性表征:悬臂梁端到端UQ测试问题

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摘要

One goal of uncertainty characterization is to develop a probability distribution that is able to properly characterize uncertainties in observed data. Observed data may vary due to various sources of uncertainty, which include uncertainties in geometry and material properties, and measurement errors. Among them, measurement errors, which are categorized as systematic and random measurement errors, are often disregarded in the uncertainty characterization process, even though they may be responsible for much of the variability in the observed data. This paper proposes an uncertainty characterization method that considers measurement errors. The proposed method separately distinguishes each source of uncertainty by using a specific type of probability distribution for each source. Next, statistical parameters of each assumed probability distribution are estimated by adopting the maximum likelihood estimation. To demonstrate the proposed method, as a case study, the method was implemented to characterize the uncertainties in the observed deflection data from the tip of a cantilever beam. In this case study, the proposed method showed greater accuracy as the amount of available observed data increased. This study provides a general guideline for uncertainty characterization of observed data in the presence of measurement errors.
机译:不确定性表征的一个目标是制定能够正确地表征观察数据中的不确定性的概率分布。观察到的数据可能因各种不确定性来源而变化,包括几何形状和材料特性的不确定性,以及测量误差。其中,在不确定性表征过程中通常忽略被分类为系统和随机测量误差的测量误差,即使它们可能对观察到的数据中的大部分变异性负责。本文提出了一种不确定性表征方法,其考虑测量误差。所提出的方法通过使用每个来源的特定类型的概率分布分别区分每个不确定性来源。接下来,通过采用最大似然估计来估计每个假定概率分布的统计参数。为了证明所提出的方法,作为案例研究,实施该方法以表征来自悬臂梁尖端的观察到的偏转数据中的不确定性。在这种情况下,所提出的方法显示出更高的准确性,因为可用的可用数据量增加。本研究提供了在存在测量误差存在下观察到的数据的不确定性表征的一般指导。

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