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Sparse Principal Component Thermography for Structural Health Monitoring of Composite Structures

机译:稀疏主成分热成像技术,用于复合结构的结构健康监测

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Non-destructive testing (NDT) techniques play an important role in structural health monitoring (SHM) of composite structures, among which infrared thermography (IRT) is popular because it is easy to operate, enables rapid inspection of large areas, and presents results as easily interpreted thermal images. In order to achieve noise reduction, feature extraction, and data compression, principal component thermography (PCT) was developed for thermographic data processing. However, each principal component in PCT is a linear combination of all the original pixel values, making the results difficult to interpret and hence affecting defect identification. In this work, sparse principal component thermography (SPCT) is proposed as an improved version of PCT, which provides more interpretable analysis results owing to its structure sparsity and leads to a better defect detection. The feasibility of SPCT is illustrated with two case studies.
机译:无损检测(NDT)技术在复合结构的结构健康监测(SHM)中起着重要作用,其中红外热像仪(IRT)易于操作,能够快速检查大面积并以如下形式呈现结果,因此广受欢迎易于解释的热图像。为了实现降噪,特征提取和数据压缩,开发了用于热成像数据处理的主成分热成像(PCT)。但是,PCT中的每个主要成分都是所有原始像素值的线性组合,因此结果难以解释,因此会影响缺陷识别。在这项工作中,提出了稀疏主成分热成像(SPCT)作为PCT的改进版本,由于它的结构稀疏性,它提供了更多可解释的分析结果,并导致更好的缺陷检测。通过两个案例研究说明了SPCT的可行性。

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