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The design of optimal real Gabor filters and their applications in fabric defect detection

机译:最佳实Gabor滤波器的设计及其在织物缺陷检测中的应用

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摘要

Fabric defect detection has been recognised as one of the key challenges for automatic production, and Gabor filters are one of the most useful tools in detecting fabric defects. The half-peak tangent method is applied in real Gabor filter design so that the filters can cover the frequency of defects as much as possible. Meanwhile, the half-peak-magnitude contours of the neighbouring filters are tangential. On this basis, two optimal orientations are selected by applying direction masks, and the optimal scale at each optimal orientation is determined according to the signal-to-noise ratio. In this way, two optimal real Gabor filters are obtained. A new algorithm based on the two optimal filters is proposed for fabric defect detection. A series of experiments are carried out for 46 fabric defect images combined with 46 corresponding reference fabric images, in order to verify the effectiveness of the new algorithm. The experimental results obtained show that the new algorithm can accurately detect defects in grey fabric defect images as well as in colour images. For the 46 fabric defect images, the detection rate is 95.66%, indicating that the new algorithm performs well. In addition, comparison of the new algorithm with other algorithms in the literature demonstrates that the new algorithm is more effective in the detection of several fabric defect images.
机译:织物缺陷检测已被认为是自动化生产的关键挑战之一,Gabor过滤器是检测织物缺陷最有用的工具之一。半峰值切线法用于实际的Gabor滤波器设计中,因此滤波器可以尽可能覆盖缺陷的频率。同时,相邻滤波器的半峰幅度轮廓是切线的。在此基础上,通过应用方向掩模来选择两个最佳方向,并根据信噪比确定每个最佳方向的最佳比例。以这种方式,获得了两个最优的实Gabor滤波器。提出了一种基于两个最优滤波器的织物缺陷检测新算法。为了验证新算法的有效性,针对46个织物缺陷图像和46个相应的参考织物图像进行了一系列实验。实验结果表明,该算法能够准确检测出坯布缺陷图像和彩色图像中的缺陷。对于46幅织物缺陷图像,其检测率为95.66%,表明该算法性能良好。另外,将新算法与文献中的其他算法进行比较表明,该新算法在检测多个织物缺陷图像方面更为有效。

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  • 来源
    《Coloration Technology》 |2015年第4期|279-287|共9页
  • 作者

    Chen Zehong; Feng Xiaoxia;

  • 作者单位

    Minnan Normal Univ, Sch Math & Stat, Zhangzhou 363000, Fujian, Peoples R China;

    Minnan Normal Univ, Sch Math & Stat, Zhangzhou 363000, Fujian, Peoples R China;

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  • 正文语种 eng
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