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Machine vision tool for real-time detection of defects on textile raw fabrics

机译:机器视觉工具,用于实时检测纺织原料织物上的缺陷

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摘要

This work describes an automated artificial vision inspection (AVI) system for real-time detection and classification of defects on textile raw fabrics. The tool (software + hardware) is directly attached to an appositely developed appraisal equipment machine (weave room monitoring system) and the inspection is performed online. The developed tool performs (1) the image acquisition of the raw fabric, (2) the extraction of some critical parameters from the acquired images, (3) an artificial neural network (ANN)-based approach able to detect and classify the most frequently occurring types of defects occurring on the raw fabric and (4) a standard image processing algorithm that allows the measurement of the geometric properties of the detected defects. The reliability of the tool is about 90% (defect detected vs. effectively existing defects), that is, similar to the performance obtained by human experts. Once detected the defects are correctly classified in 88% of cases and their geometrical properties are measured with a sub-pixel precision.
机译:这项工作描述了一种自动化的人工视觉检查(AVI)系统,用于实时检测和分类纺织原料织物上的缺陷。该工具(软件+硬件)直接连接到专门开发的评估设备机器(机房监视系统),并且在线进行检查。开发的工具执行(1)原始织物的图像采集,(2)从采集的图像中提取一些关键参数,(3)基于人工神经网络(ANN)的方法,能够最频繁地进行检测和分类原始织物上出现的缺陷的出现类型和(4)标准图像处理算法,该算法可以测量检测到的缺陷的几何特性。该工具的可靠性大约为90%(检测到的缺陷与有效存在的缺陷),这类似于人类专家获得的性能。一旦检测到缺陷,就可以在88%的情况下对缺陷进行正确分类,并以亚像素精度测量其几何特性。

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