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An automated inspection system for textile fabrics based on Gabor filters

机译:基于Gabor过滤器的纺织品自动检查系统

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摘要

This paper studies the application of advanced computer image processing techniques for solving the problem of automated defect detection for textile fabrics. A new defect detection scheme is proposed, which consists of an odd symmetric real-valued Gabor filter, an even symmetric real-valued Gabor filter and one smoothing filter. In developing the scheme, the Gabor filters are designed on the basis of the texture features extracted optimally from a non-defective fabric image by using a Gabor wavelet network (GWN). The performance of the proposed defect detection scheme is evaluated off-line by using a set of fabric images taken from a database consisting of a wide variety of homogeneous fabric images. The results exhibit accurate defect detection with low false alarms, thus showing the effectiveness and robustness of the proposed scheme. To evaluate the performance of the proposed defect detection scheme further, real-time tests are conducted by using a prototyped automated defect detection system. The experimental results obtained further confirm the efficiency, effectiveness and robustness of the proposed detection scheme.
机译:本文研究了先进的计算机图像处理技术在解决纺织品自动缺陷检测中的应用。提出了一种新的缺陷检测方案,该方案由奇数对称实值Gabor滤波器,偶数对称实值Gabor滤波器和一个平滑滤波器组成。在开发该方案时,基于Gabor小波网络(GWN)从无缺陷的织物图像中最佳提取的纹理特征来设计Gabor滤波器。通过使用从数据库中获取的一组织物图像,离线评估所提出的缺陷检测方案的性能,该数据库由各种各样的同类织物图像组成。结果显示出准确的缺陷检测率和低的虚警率,从而显示了所提方案的有效性和鲁棒性。为了进一步评估提出的缺陷检测方案的性能,使用原型自动缺陷检测系统进行了实时测试。获得的实验结果进一步证实了所提出的检测方案的效率,有效性和鲁棒性。

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