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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Model-based compressive sensing for damage localization in lamb wave inspection
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Model-based compressive sensing for damage localization in lamb wave inspection

机译:基于模型的压缩感测在羔羊波检查中的损伤定位

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摘要

Compressive sensing (CS) has emerged as a potentially viable technique for the efficient compression and analysis of high-resolution signals that have a sparse representation in a fixed basis. In this work, we have developed a CS approach for ultrasonic signal decomposition suitable to achieve high performance in Lamb-wave-based defect detection procedures. In the proposed approach, a CS algorithm based on an alternating minimization (AM) procedure is adopted to extract the information about both the system impulse response and the reflectivity function. The implemented tool exploits the dispersion compensation properties of the warped frequency transform as a means to generate the sparsifying basis for the signal representation. The effectiveness of the decomposition task is demonstrated on synthetic signals and successfully tested on experimental Lamb waves propagating in an aluminum plate. Compared with available strategies, the proposed approach provides an improvement in the accuracy of wave propagation path length estimation, a fundamental step in defect localization procedures.
机译:压缩感测(CS)已经成为一种有效可行的技术,可以有效地压缩和分析在固定基础上具有稀疏表示的高分辨率信号。在这项工作中,我们已经开发了一种用于超声信号分解的CS方法,该方法适合在基于Lambwave的缺陷检测程序中实现高性能。在提出的方法中,采用基于交替最小化(AM)程序的CS算法来提取有关系统脉冲响应和反射率函数的信息。所实现的工具利用了扭曲频率变换的色散补偿特性作为生成信号表示的稀疏基础的一种手段。分解任务的有效性在合成信号上得到了证明,并在铝板上传播的实验性兰姆波上得到了成功测试。与可用策略相比,该方法可以提高波传播路径长度估计的准确性,这是缺陷定位程序中的基本步骤。

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