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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Multiple target detection using split spectrum processing and group delay moving entropy
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Multiple target detection using split spectrum processing and group delay moving entropy

机译:使用分割频谱处理和群时延移动熵的多目标检测

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The split spectrum processing technique obtains a frequency-diverse ensemble of narrow-band signals through a filterbank then recombines them nonlinearly to improve target visibility. Although split spectrum processing is an effective method for suppressing grain noise in ultrasonic nondestructive testing, its application was mainly limited to the detection of single targets or multiple targets having similar spectral characteristics. In this paper, the group delay moving entropy technique is introduced primarily to enhance the performance of split spectrum processing in detecting multiple targets which exhibit different spectral characteristics (i.e., variations in target signal center frequency and bandwidth). This is likely to occur in complex, dispersive, and nonhomogeneous media such as composites, layered, and clad materials, etc. The analysis shows that the group delay moving entropy method can be used effectively to select the optimal frequency region for split spectrum processing when detecting such targets. Based on an iterative procedure that combines group delay moving entropy and split spectrum processing, multiple targets can be identified one at a time, and subsequently eliminated by using time domain windows. The removal of the dominant target improves the detection of the remaining weaker targets. Simulation results are presented which demonstrate the feasibility of the multistep split spectrum processing technique for detecting multiple targets in such materials.
机译:分离频谱处理技术通过滤波器组获得窄带信号的分频整体,然后将它们非线性地重组以提高目标可见度。尽管分谱处理是抑制超声无损检测中颗粒噪声的有效方法,但其应用主要限于检测具有相似光谱特性的单个目标或多个目标。在本文中,主要介绍了组延迟移动熵技术,以增强分割频谱处理在检测具有不同频谱特性(即目标信号中心频率和带宽变化)的多个目标时的性能。这很可能发生在复杂,分散和不均匀的介质中,例如复合材料,层状材料和复合材料等。分析表明,群延迟移动熵方法可以有效地选择最佳频率区域,以进行分频谱处理。检测这样的目标。基于将群延迟移动熵和拆分频谱处理相结合的迭代过程,可以一次识别一个目标,然后使用时域窗口消除多个目标。去除主要目标可改善对其余较弱目标的检测。仿真结果表明,该方法证明了多步分离光谱处理技术在此类材料中检测多个目标的可行性。

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