一种用于表面缺陷检测的智能实时视觉系统

H. Jia, Y. Murphey, Jianjun Shi, Tzyy-Shuh Chang
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引用次数: 169

摘要

近年来,制造业对质量控制的需求日益增加。在炼钢过程中,轧制工序往往是影响钢的整体组织的最后一道工序。轧钢产生缺陷的成本很高,因为生产一吨钢需要5000千瓦时以上的成本。早期发现缺陷可以减少产品损坏和制造成本。本文介绍了一种利用支持向量机自动学习复杂缺陷模式的实时视觉检测系统。基于一千多幅图像的实验结果表明,该系统能够有效地检测钢的表面缺陷。该系统的特征提取和缺陷检测速度小于6毫秒每兆字节的图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An intelligent real-time vision system for surface defect detection
In recent years, there is an increased need for quality control in the manufacturing sectors. In the steel making, the rolling operation is often the last process that significantly affects the bulk microstructure of the steel. The cost of having defects on rolled steel is high because it takes more than 5000 KW-Hr to produce a ton of steel. Early detection of defects can reduce product damage and manufacturing cost. This paper describes a real-time visual inspection system that uses support vector machine to automatically learn complicated defect patterns. Based on the experimental results generated from over one thousand images, the proposed system is found to be effective in detecting steel surface detects. The speed of the system for feature extraction and defect detection is less than 6 msec per one-megabyte image.
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