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On-line Fabric-Defects Detection Based on Wavelet Analysis

机译:基于小波分析的织物疵点在线检测

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摘要

This paper introduces a vision-based on-line fabric inspection methodology for woven textile fabrics. The current procedure for the determination of fabric defects in the textile industry is performed by humans in the off-line stage. The proposed inspection system consists of hardware and software components. The hardware components consist of CCD array camera, a frame grabber, and appropriate illumination. The software routines capitalize on vertical and horizontal scanning algorithms to reduce the 2-D image into a stream of 1-D data. Next, wavelet transform is used to extract features that are characteristic of a particular defect. The signal-to-noise ratio (SNR) calculation based on the results of the wavelet transform is performed to measure any defects. Defect detection is carried out by employing SNR and scanning methods. Learning routines are called upon to optimize the wavelet coefficients. Test results from different types of defect and different styles of fabric demonstrate the effectiveness of the proposed inspection system.
机译:本文介绍了一种基于视觉的机织纺织面料在线检测方法。用于确定纺织工业中的织物缺陷的当前程序是由人在离线阶段执行的。建议的检查系统由硬件和软件组件组成。硬件组件包括CCD阵列摄像机,一个图像采集卡和适当的照明。该软件例程利用垂直和水平扫描算法将二维图像缩小为一维数据流。接下来,小波变换用于提取特定缺陷特征的特征。执行基于小波变换结果的信噪比(SNR)计算以测量任何缺陷。通过采用SNR和扫描方法进行缺陷检测。调用学习例程来优化小波系数。来自不同类型缺陷和不同样式织物的测试结果证明了所提出的检查系统的有效性。

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