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Discriminative fabric defect detection using adaptive wavelets

机译:利用自适应小波检测判别面料缺陷

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摘要

We propose a new method for fabric defect detection by incorporating the design of an adaptive wavelet-based feature extractor with the design of an Euclidean distance-based detector. The proposed method characterizes the fabric image with multiscale wavelet features by using undecimated discrete wavelet transforms. Each nonoverlapping window of the fabric image is then detected as defect or nondefect with an Euclidean distance-based detector. Instead of using the standard wavelet bases, an adaptive wavelet basis is designed for the detection of fabric defects. Minimization of the detection error Is achieved by incorporating the design of the adaptive wavelet with the design of the detector parameters using a discriminative feature extraction (DFE) training method. The proposed method has been evaluated on 480 defect samples from five types of defects, and 480 nondefect samples, where a 97.5% detection rate and 0.63% false alarm rate were achieved. The evaluations were also carried out on unknown types of defects, where a 93.3% detection rate and 3.97% false alarm rate were achieved in the detection of 180 defect samples and 780 nondefect samples. © 2002 Society of Photo-Optical Instrumentation Engineers.
机译:通过将基于自适应小波的特征提取器的设计与基于欧几里德距离的检测器的设计相结合,我们提出了一种用于织物缺陷检测的新方法。所提出的方法通过使用未抽取的离散小波变换来表征具有多尺度小波特征的织物图像。然后,基于欧几里德距离的检测器将织物图像的每个不重叠的窗口检测为缺陷或非缺陷。代替使用标准小波基,设计了自适应小波基来检测织物缺陷。通过使用区分特征提取(DFE)训练方法将自适应小波的设计与检测器参数的设计结合起来,可以实现检测误差的最小化。对五种类型缺陷中的480个缺陷样本和480个非缺陷样本进行了评估,该方法的检出率为97.5%,虚警率为0.63%。还对未知类型的缺陷进行了评估,在检测180个缺陷样品和780个非缺陷样品中,检出率达到93.3%,错误警报率为3.97%。 ©2002光电仪器工程师协会。

著录项

  • 作者

    Yang XZ; Pang GKH; Yung NHC;

  • 作者单位
  • 年度 2002
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  • 原文格式 PDF
  • 正文语种 eng
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