Abstract An efficient adaptive database sampling strategy with applications to eddy current signals
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An efficient adaptive database sampling strategy with applications to eddy current signals

机译:一种高效的自适应数据库采样策略,应用于涡流信号

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AbstractComputer simulations are widely used in engineering domains to model complex scenarios and extract meaningful information or improve the understanding of a given problem. Common purposes of simulation studies are inversion, optimization, sensitivity analysis and evaluation of performance. In such contexts, it is often convenient to replace the time consuming forward solver by a metamodel acting as a fast and accurate substitute in a restricted range of input parameters. Focused on applications in the field of Electromagnetic-Non Destructive Testing (E-NDT), this paper proposes an approach to design robust metamodels, based on adaptive databases of simulation results in order to ensure their accuracy. They can then be used as real-time emulators of the physical model and considerably speed up time consuming studies like estimation of probability of detection, defect characterization or sensitivity analysis. The database and metamodel generation problem is first addressed with a meshless approach based on Augmented Radial Basis Function (A-RBF) algorithm. Then, its performance is compared with that of a more standard approach exploiting an-dimensional Delaunay mesh. Both approaches rely on an adaptive generation technique known in the literature as Output Space Filling (OSF). Performance in terms of computational time and results accuracy of both methods are finally evaluated and compared in the case of a specific application: the simulation of Eddy Current Testing (ECT) inspection problems.]]>
机译:<![cdata [ 抽象 计算机模拟广泛用于工程域,以建模复杂的情景,并提取有意义的信息或提高对给定问题的理解。模拟研究的常用目的是反演,优化,敏感性分析和性能评估。在这种情况下,通常方便地通过在限制的输入参数范围内用作快速准确的替代品来替换前进求解器的时间消耗的耗时。专注于电磁 - 非破坏性测试领域的应用(E-NDT),本文提出了一种基于模拟结果的自适应数据库设计鲁棒元的方法,以确保其准确性。然后,它们可以用作物理模型的实时仿真器,并且相当加速时间消耗研究,例如检测概率,缺陷表征或灵敏度分析。首先基于增强径向基函数(A-RBF)算法的无网格方法来解决数据库和元模型生成问题。然后,将其性能与利用 n -dimensional delaunay网格的更具标准方法进行了比较。两种方法依赖于文献中已知的自适应生成技术,作为输出空间填充(OSF)。在计算时间和结果方面的性能最终评估两种方法的准确性,并在特定应用的情况下进行比较:涡流测试(ECT)检查问题的模拟。 ]]>

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