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A visual inspection system for quality control of optical lenses

机译:视觉检查系统,用于光学镜片的质量控制

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This paper proposes a quality inspection system for optical lenses using computer vision techniques. The system is able to inspect LED (Light-Emitting Diode) lenses visually and to validate their quality level automatically based on the defect severity. The optical inspection system applies the block discrete cosine transform (BDCT), Hotellingstatistic, and grey clustering technique to detect visual defects of LED lenses. A spatial domain image with equal sized blocks is converted to DCT (Discrete Cosine Transform) domain and some representative energy features of each DCT block are extracted. These energy features of each block are integrated by thestatistic and the suspected defect blocks can be determined by the multivariate statistical method. Then, the grey clustering algorithm based on the block grey relational grades is conducted to further confirm the block locations of real defects. Finally, a simple segmentation method is applied to set a threshold for distinguishing between defective areas and uniform regions. Experimental results show the defect detection rate of the proposed method is 94.64% better than those of traditional spatial and frequency domain techniques.
机译:本文提出了一种使用计算机视觉技术的光学镜片质量检查系统。该系统能够目视检查LED(发光二极管)透镜,并根据缺陷的严重程度自动验证其质量水平。光学检测系统应用块离散余弦变换(BDCT),Hotellingstatistic和灰色聚类技术来检测LED透镜的视觉缺陷。将具有相等大小的块的空间域图像转换为DCT(离散余弦变换)域,并提取每个DCT块的一些代表性能量特征。每个块的这些能量特征通过统计进行积分,并且可疑缺陷块可以通过多元统计方法确定。然后,基于块的灰色关联度进行了灰色聚类算法,以进一步确定真实缺陷的块位置。最后,采用一种简单的分割方法来设置用于区分缺陷区域和均匀区域的阈值。实验结果表明,该方法的缺陷检测率比传统的空间和频域检测方法高94.64%。

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