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Bispectrum for welds defects detection from radiographic images

机译:BISPECTRUM用于焊接缺陷射线照相图像的检测

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This paper presents a proposed method for the detection of welds defects from radiographic images. Firstly, the radiographic images were enhanced using Adaptive Histogram Equalization and were filtered using Mean and Wiener filters. Secondly, the welding area was selected from the radiography image. Thirdly, the images were converted to signals then the features were extracted from the Bispectrum of these signals. Finally, neural networks were used for training and testing the proposed method. The proposed model was tested on 100 radiography images in the presence of noise and image blurring. Results show that the proposed model yields best results for the detection of weld defects in radiography images when using the Bispectrum method estimated by Autoregressive moving average (ARMA) method.
机译:本文介绍了一种用于检测射线图像缺陷的方法。首先,使用自适应直方图均衡来增强放射线图像,并使用均值和维纳滤波器进行滤波。其次,从射线照相图像中选择焊接区域。第三,将图像转换为信号,然后从这些信号的双谱中提取特征。最后,神经网络用于培训和测试该方法。在存在噪声和图像模糊的情况下,在100个造影图像上测试了所提出的模型。结果表明,当使用自回归移动平均(ARMA)方法估计的双谱方法时,所提出的模型可以在放射线照相图像中检测焊接缺陷的最佳结果。

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