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Shape descriptors and statistical classification on areal topography data for tile inspection in tessellated surfaces

机译:面状地形数据的形状描述符和统计分类,用于镶嵌曲面中的瓷砖检查

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摘要

Verification of conformance to design specifications in production, and identification of defects related to wear or other damage during maintenance, are key metrological aspects that must be addressed for micro-scale tessellated surfaces. A new algorithmic approach is presented that operates on topography datasets as obtained by areal topography instruments. The approach combines segmentation algorithms with a novel implementation of the angular radial transform, originally adopted by the MPEG-7 standard, to implement shape descriptors and associated similarity metrics. Applications to the inspection and verification of laser-manufactured micro-embossing topographies are illustrated. The topographies are first segmented to extract the individual tiles; the tiles are then encoded through shape descriptors. Principal component analysis and cluster analysis are used to investigate the behaviour of the angular radial transform coefficients. Finally, an algorithmic classifier based on supervised learning (k-nearest neighbours) is implemented and shown to be effective at identifying defects and at discriminating between defect types.
机译:验证生产中的设计规格是否符合要求,以及识别与维护期间的磨损或其他损坏有关的缺陷,是微尺度细分表面必须解决的关键计量问题。提出了一种新的算法方法,该方法可对通过面积地形仪器获得的地形数据集进行操作。该方法将分段算法与最初由MPEG-7标准采用的新颖的角度径向变换实现相结合,以实现形状描述符和相关的相似性度量。说明了在激光制造的微压花形貌的检查和验证中的应用。首先将地形图分割以提取单个图块;然后,通过形状描述符对图块进行编码。主成分分析和聚类分析用于研究角径向变换系数的行为。最后,实现了基于监督学习(k近邻)的算法分类器,该分类器在识别缺陷和区分缺陷类型方面非常有效。

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