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A Benchmark Problem for Comparison of Vibration-Based Crack Identification Methods

机译:基于振动裂纹识别方法比较的基准问题

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摘要

The vibration-based crack identification problem insists of finding a measured vibration parameter from a complete crack-detection-database constructed by numerical simulation. It is one of the classical optimization problems. Many intelligence methods, such as neural network (NN), genetic algorithm (GA), determinant transformation (DT), and frequency contour (FC) etc., have been extensively employed as optimization tools to achieve this task. The aim of this paper is to propose a benchmark problem to compare these extensive-used optimization methods in terms of crack identification precision and computational time. The merit and demerits for each method are discussed. The results suggest that FC is a visualized, stable and easily applied method for detecting crack in practice. The conclusions of current studies are useful to investigators in deciding which method should be chosen in their crack inspections.
机译:基于振动的裂缝识别问题坚持从数值模拟构造的完整裂缝检测数据库中找到测量的振动参数。 它是古典优化问题之一。 许多智能方法,例如神经网络(NN),遗传算法(GA),决定因素变换(DT)和频率轮廓(FC)等被广泛地用作实现这项任务的优化工具。 本文的目的是提出基准问题,以比较这些广泛使用的优化方法在裂缝识别精度和计算时间方面。 讨论了每种方法的优点和缺点。 结果表明,FC是一种可视化,稳定且容易应用的方法,用于检测裂缝的实践。 目前研究的结论对于调查人员对决定在其裂缝检查中选择哪种方法是有用的。

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