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Sequential Monte Carlo Methods for Electromagnetic NDE Inverse Problems—Evaluation and Comparison of Measurement Models

机译:电磁NDE反问题的顺序蒙特卡罗方法—测量模型的评估和比较

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摘要

Flaw profile estimation from measurements is a typical inverse problem in electromagnetic nondestructive evaluation (NDE). The application of recursive Bayesian nonlinear filters based on sequential Monte Carlo methods, in conjunction with measurement process models and a Markovian crack growth model, is a new approach for solving such inverse problems. The approach resembles the classical discrete-time tracking problem and is robust to the noisy measurement data. This paper reports a comparative study of the results of employing different measurement models in this Bayesian inversion framework. The results are evaluated on the basis of accuracy and computational cost.
机译:通过测量得出的缺陷轮廓估计是电磁无损评估(NDE)中的典型反问题。基于顺序蒙特卡洛方法的递归贝叶斯非线性滤波器,结合测量过程模型和马尔可夫裂纹扩展模型,是解决此类反问题的一种新方法。该方法类似于经典的离散时间跟踪问题,并且对嘈杂的测量数据具有鲁棒性。本文报告了在此贝叶斯反演框架中采用不同测量模型的结果的比较研究。根据准确性和计算成本对结果进行评估。

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