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AUTOMATIC FEATURE EXTRACTION AND CLASSIFICATION OF SURFACE DEFECTS IN CONTINUOUS CASTING

机译:连续铸造中表面缺陷的自动特征提取和分类

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摘要

The problem of surface defects is a major quality concern in continuous casting. Although there exist methods in the literature to effectively detect surface defects, most are limited to specific defect types, and there is a paucity of research for classification of various defects. This paper presents a methodology for online detection and classification of surface defects in continuous casting using vision-based sensing technology. First, a two-stage algorithm is proposed to effectively extract potential surface defect regions from the noisy background. Then, the potential surface defects are classified into different categories using a newly developed classification method. The proposed methods are implemented and validated using data collected from a real world continuous casting process.
机译:表面缺陷的问题是连续铸造中主要的质量问题。尽管文献中存在有效检测表面缺陷的方法,但是大多数方法仅限于特定的缺陷类型,并且缺乏对各种缺陷进行分类的研究。本文介绍了一种使用基于视觉的传感技术在线检测连续铸造中的表面缺陷并进行分类的方法。首先,提出了一种两阶段算法来有效地从嘈杂的背景中提取潜在的表面缺陷区域。然后,使用新开发的分类方法将潜在的表面缺陷分类为不同的类别。使用从现实世界的连续铸造过程中收集的数据来实施和验证所提出的方法。

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