首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Micro Surface Defect Detection Method for Silicon Steel Strip Based on Saliency Convex Active Contour Model
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Micro Surface Defect Detection Method for Silicon Steel Strip Based on Saliency Convex Active Contour Model

机译:基于显着凸主动轮廓模型的硅钢带微表面缺陷检测方法

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Accurate detection of surface defect is an indispensable section in steel surface inspection system. In order to detect the micro surface defect of silicon steel strip, a new detection method based on saliency convex active contour model is proposed. In the proposed method, visual saliency extraction is employed to suppress the clutter background for the purpose of highlighting the potential objects. The extracted saliency map is then exploited as a feature, which is fused into a convex energy minimization function of local-based active contour. Meanwhile, a numerical minimization algorithm is introduced to separate the micro surface defects from cluttered background. Experimental results demonstrate that the proposed method presents good performance for detecting micro surface defects including spot-defect and steel-pit-defect. Even in the cluttered background, the proposed method detects almost all of the microdefects without any false objects.
机译:准确检测表面缺陷是钢表面检测系统中必不可少的部分。为了检测硅钢带的微观表面缺陷,提出了一种基于显着凸主动轮廓模型的检测方法。在所提出的方法中,为了突出潜在的对象,采用视觉显着性提取来抑制杂波背景。然后将提取的显着性图用作特征,将其融合到基于局部的活动轮廓的凸能量最小化函数中。同时,引入了数值最小化算法,以将微观表面缺陷与杂乱的背景分开。实验结果表明,该方法具有良好的检测表面缺陷的性能,包括斑点缺陷和钢蚀坑缺陷。即使在混乱的背景下,所提出的方法也可以检测到几乎所有的微缺陷,而没有任何假物体。

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