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Surface Defect Detection Method Using Saliency Linear Scanning Morphology for Silicon Steel Strip under Oil Pollution Interference

机译:基于显着线性扫描形态学的油污干扰下硅钢带表面缺陷检测方法

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Surface defect detection of silicon steel strip is an important section for non-destructive testing system in iron and steel industry. To detect the interesting defect objects for silicon steel strip under oil pollution interference, a new detection method based on saliency linear scanning morphology is proposed. In the proposed method, visual saliency extraction is employed to suppress the clutter background. Meanwhile, a saliency map is obtained for the purpose of highlighting the potential objects. Then, the linear scanning operation is proposed to obtain the region of oil pollution. Finally, the morphology edge processing is proposed to remove the edge of oil pollution interference and the edge of reflective pseudo-defect. Experimental results demonstrate that the proposed method presents the good performance for detecting surface defects including wipe-crack-defect, scratch-defect and small-defect.
机译:硅钢带表面缺陷检测是钢铁工业无损检测系统的重要组成部分。为了检测油污干扰下硅钢带中有趣的缺陷物体,提出了一种基于显着线性扫描形态学的新检测方法。在提出的方法中,视觉显着性提取用于抑制杂波背景。同时,为了突出潜在对象而获得了显着图。然后,提出了线性扫描操作以获得油污染区域。最后,提出了形态学边缘处理方法,以去除油污干扰的边缘和反射伪缺陷的边缘。实验结果表明,所提出的方法具有良好的检测缺陷的性能,包括擦痕,划痕和小缺陷。

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