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Defect Detection and Recognition of Bare PCB Based on Computer Vision

机译:基于计算机视觉的裸PCB缺陷检测与识别

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Defect detection and recognition of bare PCB plays a significant role in computer vision applications. An accurate and efficient approach is implemented in this paper. The approach is based on the comparison between the standard PCB image and the target image. Multiple images of the qualified PCBs are acquired at the same position. We take an average of the images and consider it to be an initial standard image. The paper suggests the concept of dynamic updation which means we update the standard image during the detection process. The bilateral filtering method is used in the preprocessing phase. Then the target image is compared with the standard image to get the difference image. And a suitable threshold is obtained by analyzing the histogram of the difference image to distinguish potential defect regions. Using the boundary-length-range method, the authenticity of each potential defect region is preliminarily judged. After that, we can identify the bare PCBs which have no defect. Moreover, an improved region growing method is proposed to obtain the complete ranges of the real defect regions. Finally, a simple but effective method is presented to recognize the type of the defects. Experimental results show that the proposed method in this paper works well.
机译:裸PCB的缺陷检测和识别在计算机视觉应用中起着重要作用。本文实施了准确和有效的方法。该方法基于标准PCB图像与目标图像之间的比较。在相同位置获取合格PCB的多个图像。我们花平均图像,并认为它是初始标准图像。该文件表明动态更新的概念,这意味着在检测过程中更新标准图像。双侧过滤方法用于预处理阶段。然后将目标图像与标准图像进行比较以获得差异图像。通过分析差异图像的直方图以区分潜在的缺陷区域来获得合适的阈值。使用边界长度范围方法,预先判断每个潜在缺陷区域的真实性。之后,我们可以识别没有缺陷的裸PCB。此外,提出了一种改进的区域生长方法以获得实际缺陷区域的完整范围。最后,提出了一种简单但有效的方法来识别缺陷的类型。实验结果表明,本文中提出的方法运行良好。

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