一种有效的基于扩张的光学自动检测聚类算法

Chin-Sheng Chen, C. Yeh
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引用次数: 0

摘要

本文提出了一种基于运行长度编码(RLE)的扩展聚类算法(DBCA)。本文首先介绍了基于扩张的连接的基本概念及其局限性。随后,通过以下步骤构建DBCA的体系结构:(1)运行长度编码,(2)基于rle的形态学操作,(3)基于rle的成分检测算法,(4)关系构建,(5)重新标记连接。然后详细讨论了在DBCA中执行的这五个过程的细节。进一步将DBCA应用于增透(AR)玻璃缺陷检测的后处理中,以证明其实用性。最后,实验结果表明,如果选择合适的结构单元,该算法可以成功地克服AR玻璃破碎缺陷的影响。此外,性能评价进一步表明,DBCA可以作为缺陷检测的后处理应用于实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient dilation-based clustering algorithm for automatic optical inspection
This paper develops an efficient dilation-based clustering algorithm (DBCA) by using run-length encoding (RLE). The fundamental concept of dilation-based connectivity and its limitation are described in the beginning. Subsequently, the architecture of DBCA is constructed in the following procedures: (1) run-length encoding, (2) RLE-based morphological operation, (3) RLE-based component detection algorithm, (4) relationship construction, and (5) re-labeling connection. The details of these five procedures performed in DBCA are then discussed in detail. DBCA is further applied in the post-processing of anti-reflection (AR) glass defect detection in order to justify its practicability. Finally, the experimental results indicate that this algorithm can successfully overcome the effects of broken defects for AR glass if an appropriate structure element is selected. Moreover, the performance evaluation further shows that DBCA can be applied in the real application as a post-processing of defect inspection.
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