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Identification of Defective Areas in Composite Materials by Bivariate EMD Analysis of Ultrasound

机译:超声双变量EMD分析识别复合材料中的缺陷区域

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摘要

In recent years, many alternative methodologies and techniques have been proposed to perform nondestructive inspection and maintenance operations of moving structures. In particular, ultrasonic techniques have shown to be very promising for automatic inspection systems. From the literature, it is evident that the neural paradigms are considered, by now, the best choice to automatically classify ultrasound data. At the same time, the most appropriate preprocessing technique is still undecided. The aim of this paper is to propose a new and innovative data preprocessing technique that converts real-valued ultrasonic data into complex-valued signals. This allows analysis using phase synchrony, a robust tool that has been previously employed in brain science for establishing robust features in noisy data. Synchrony estimation is achieved using complex extensions of empirical mode decomposition, a data-driven algorithm for detecting temporal scales, thus facilitating the modeling of nonlinear and nonstationary signal dynamics. Experimental tests aiming to detect defective areas in composite materials are reported, and the effectiveness of the proposed methodology is illustrated.
机译:近年来,已经提出了许多替代方法和技术来执行移动结构的无损检查和维护操作。特别地,超声技术已经显示对于自动检查系统非常有前途。从文献中可以明显看出,到目前为止,神经范例已被视为自动分类超声数据的最佳选择。同时,仍未确定最合适的预处理技术。本文的目的是提出一种新颖的数据预处理技术,该技术可以将实值超声数据转换为复值信号。这允许使用相位同步进行分析,相位同步是一种健壮的工具,以前已在脑科学中用于在噪声数据中建立健壮的特征。使用经验模式分解的复杂扩展(一种用于检测时间尺度的数据驱动算法)来实现同步估计,从而有助于非线性和非平稳信号动力学的建模。报告了旨在检测​​复合材料中缺陷区域的实验测试,并说明了所提出方法的有效性。

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