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Defect Detection on Printed Fabrics Via Gabor Filter and Regular Band

机译:通过Gabor过滤器和规则带检测印花织物上的缺陷

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摘要

Two methods are proposed in this paper to inspect printed fabrics. One method is to apply a genetic algorithm to select parameters of optimal Gabor filter. Optimal Gabor filter can reduce the noise information of printed fabrics, which can achieve defect detection of printed fabrics. The other is in utilizing distance matching function to determine the unit of printed fabrics. Extracting features on a moving unit of printed fabrics can realize defect segmentation of printed fabrics. Two approaches of defect detection have their own advantages. Detecting method with Gabor filter using genetic algorithm has perfect detection results of random printed fabrics, the other method based on statistical rule can receive better defect detection results of regular printed fabrics. Both methods can be realized in practice and detection time of proposed methods can occupy little in total detection time.
机译:本文提出了两种检查印花织物的方法。一种方法是应用遗传算法来选择最佳Gabor滤波器的参数。最佳的Gabor滤波器可以减少印花织物的噪声信息,从而可以实现印花织物的缺陷检测。另一个是利用距离匹配功能来确定印花织物的单位。在印花织物的移动单元上提取特征可以实现印花织物的缺陷分割。两种缺陷检测方法各有优点。采用遗传算法的Gabor滤波器检测方法对随机印花织物的检测效果理想,而另一种基于统计规则的方法则可以更好地检测常规印花织物的疵点。两种方法均可在实践中实现,所提方法的检测时间几乎不占总检测时间。

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