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A surface defects inspection method based on multidirectional gray-level fluctuation

机译:基于多向灰度波动的表面缺陷检查方法

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摘要

Machine vision inspection technology provides an efficient tool for surface defects inspection. However, because of the multiformity of surface defects, the existing machine vision methods for surface defects inspection are limited by application scenarios. In order to improve the versatility of algorithms, and to process various kinds of images more accurately, we propose a new adaptive method for surface defect detection, named neighborhood gray-level difference method using the multidirectional gray-level fluctuation. This method changes thresholds and step values by extracting gray-level-fluctuating condition of images, and then it uses the neighborhood gray-level difference to segment defects from background. Experimental results demonstrate the effectiveness of the proposed method for inspecting different surface defects. Compared with other methods, the proposed method can be applied to inspect various surface defects, and it can provide more accurate defect segmentation results.
机译:机器视觉检测技术为表面缺陷检测提供了一种有效的工具。然而,由于表面缺陷的多均匀性,用于表面缺陷检查的现有机器视觉方法受应用方案的限制。为了提高算法的多功能性,并更准确地处理各种图像,我们提出了一种新的自适应方法,用于表面缺陷检测,命名为邻域灰级差异方法,使用多向灰度级波动。该方法通过提取图像的灰度级波动条件来改变阈值和步骤值,然后它使用邻域灰度级别差与背景段缺陷。实验结果证明了该方法检查不同表面缺陷的有效性。与其他方法相比,所提出的方法可以应用于检查各种表面缺陷,并且可以提供更准确的缺陷分段结果。

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