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Quantitative detection of defects based on Markov-PCA-BP algorithm using pulsed infrared thermography technology

机译:基于Markov-PCA-BP算法的脉冲红外热成像技术定量检测缺陷

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摘要

Quantitative detection of debonding defects' diameter and depth in TBCs has been carried out using pulsed infrared thermography technology. By combining principal component analysis with neural network theory, the Markov-PCA-BP algorithm was proposed. The principle and realization process of the proposed algorithm was described. In the prediction model, the principal components which can reflect most characteristics of the thermal wave signal were set as the input, and the defect depth and diameter was set as the output. The experimental data from pulsed infrared thermography tests of TBCs with flat bottom hole defects was selected as the training and testing sample. Markov-PCA-BP predictive system was arrived, based on which both the defect depth and diameter were identified accurately, which proved the effectiveness of the proposed method for quantitative detection of debonding defects in TBCs. (C) 2016 Elsevier B.V. All rights reserved.
机译:已经使用脉冲红外热成像技术对TBC中脱胶缺陷的直径和深度进行了定量检测。将主成分分析与神经网络理论相结合,提出了Markov-PCA-BP算法。描述了该算法的原理和实现过程。在预测模型中,将能够反映热波信号的大多数特性的主成分设置为输入,并将缺陷深度和直径设置为输出。选择具有平底孔缺陷的TBC的脉冲红外热成像测试的实验数据作为训练和测试样本。建立了Markov-PCA-BP预测系统,在此基础上可以准确识别缺陷的深度和直径,证明了该方法定量检测TBC中脱胶缺陷的有效性。 (C)2016 Elsevier B.V.保留所有权利。

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