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Fabric defect detection methods for circular knitting machines

机译:圆形针织机的织物缺陷检测方法

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In this paper, an online fabric defect detection system that can detect fabric defects which may occur during the fabric product in knitting machines is introduced. This system mainly includes three steps: 1) Construction of a defected/defect-free fabric database; 2) Obtaining and classification of the feature vectors; 3) Online working on embedded system. This study only contains information about the first two stages. In the first stage, 3242 `defected' and `5923' defect-free images were acquired by using a conveyor system which has line scan camera and linear light. In the second stage, filtering, feature extraction (wavelet transform, co-occurrence matrix and CoHOG) and classification (YSA) processes were carried out. As a result, obtaining the feature vectors through wavelet transform has reduced computation cost by 53% and also has successfully provided the classification of the defects by 90%.
机译:在本文中,引入了一种在线面料缺陷检测系统,其可以检测在针织机中的织物产品中可能发生的织物缺陷。该系统主要包括三个步骤:1)构建缺陷/缺陷的织物数据库; 2)获得和分类特征向量; 3)在线工作嵌入式系统。本研究仅包含有关前两个阶段的信息。在第一阶段,通过使用具有线扫描相机和线性光的传送系统获取3242`和`5923'缺陷图像。在第二阶段,进行过滤,特征提取(小波变换,共发生矩阵和COHOG)和分类(YSA)过程。结果,通过小波变换获得特征向量的计算成本减少了53%,并且还成功提供了90%的缺陷的分类。

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