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Low-rank sparse principal component thermography (sparse-PCT): Comparative assessment on detection of subsurface defects

机译:低级别稀疏主成分热成像(稀疏-PCT):对地下缺陷检测的比较评估

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摘要

Infrared Non-destructive Testing (IRNDT) applications are unequivocally expanded and portend a commodity to improve the quality of defect detection in different fields such as aviation and industrial methods to arts and archaeology. The proposed approach focuses on the application of low-rank sparse principal component thermography (Sparse-PCT or SPCT) to assess the advantages and drawbacks of the method for non-destructive testing. For benchmarking the approach, two types of infrared image sets are tested: the Square Pulse Thermography (SPT) method for two hybrid composites (carbon and flax fiber reinforced epoxy), and passive infrared test of Bell Tower and the University of L'Aquila (AQ) faculty's wall infrared sets. The quantitative assessment of the approach is also compared for every method and indicate considerable segmentation performance where other similar approaches were not able to detect the defects. SPCT performance was compared to some popular decomposition methods such as principal component thermography (PCT), candid covariance-free incremental principal component thermography (CCIPCT), non-negative matrix factorization (NMF) using gradient descent (GD) or non-negative least square (NNLS). The comparative results demonstrate the considerable performance while the other methods failed.
机译:红外线无损检测(IRNDT)应用明确扩展,并开展商品,以提高不同领域的缺陷检测质量,如航空和工业方法到艺术和考古学。所提出的方法侧重于低级稀疏主成分热成像(稀疏PCT或SPCT)的应用,以评估非破坏性测试方法的优点和缺点。对于该方法的基准测试,测试了两种类型的红外图像集:用于两个混合复合材料(碳和亚麻纤维增强环氧树脂)的方脉冲热成像(SPT)方法,以及钟楼和L'Aquila大学的被动红外测试( AQ)教师的墙壁红外套装。对于每种方法,还比较了这种方法的定量评估,并表明了相当大的分割性能,其中其他类似的方法无法检测到缺陷。将SPCT性能与一些流行的分解方法进行比较,例如主成分热成像(PCT),坦率的无协方差增量主成分热成像(CCIPCT),使用梯度下降(GD)或非负数最小正方形的非负矩阵分解(NMF) (nnls)。比较结果表明了其他方法失败的同时性能。

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