首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Machine Vision System for Automatic Inspection of Surface Defects in Aluminum Die Casting
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Machine Vision System for Automatic Inspection of Surface Defects in Aluminum Die Casting

机译:机器视觉系统,用于自动检查铝压铸件的表面缺陷

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摘要

A camera based machine vision system for the automatic inspection of surface defects in aluminum die casting is presented. The system uses a hybrid image processing algorithm based on mathematic morphology to detect defects with different sizes and shapes. The defect inspection algorithm consists of two parts. One is a parameter learning algorithm, in which a genetic algorithm is used to extract optimal structuring element parameters, and segmentation and noise removal thresholds. The second part is a defect detection algorithm, in which the parameters obtained by a genetic algorithm are used for morphological operations. The machine vision system has been applied in an industrial setting to detect two types of casting defects: parts mix-up and any defects on the surface of castings. The system performs with a 99% or higher accuracy for both part mix-up and defect detection and is currently used in industry as part of normal production.
机译:提出了一种基于相机的机器视觉系统,用于自动检查铝压铸件的表面缺陷。该系统使用基于数学形态学的混合图像处理算法来检测具有不同大小和形状的缺陷。缺陷检查算法由两部分组成。一种是参数学习算法,其中使用遗传算法提取最佳结构元素参数以及分割和噪声去除阈值。第二部分是缺陷检测算法,其中通过遗传算法获得的参数用于形态学运算。机器视觉系统已在工业环境中应用,可检测两种类型的铸件缺陷:零件混合以及铸件表面上的任何缺陷。该系统在零件混合和缺陷检测方面均具有99%或更高的精度,目前已在工业中用作正常生产的一部分。

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