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Steel bars counting and splitting method based on machine vision

机译:基于机器视觉的钢筋计数分裂方法

摘要

This paper proposes a novel on-line steel bars counting and splitting method based on machine vision which uses concave dots matching to segment, K-level fault tolerance to count and visual feedback to multiple split automatically. Firstly, it preprocesses images of bars and uses connected area analysis to obtain edge profile of adherent bars, then scans concave areas in the contour and find concave dots. Secondly, it uses concave dot matching condition to segment and counts single bar after segmentation to achieve counting purpose through movement estimation and K-level fault tolerance algorithm. Finally, visual feedback is presented, if preliminary split is wrong, redraw the line for splitting and drive the splitting mechanism again. Experiment results show that the method has a high accuracy for segmentation of adherent bars, and can split steel bars accurately. The accuracy ratio of segmentation for steel bars whose diameters are between 8mm and 20mm is more than 99.90%, which satisfies the accepted standard of enterprises.
机译:提出了一种基于机器视觉的在线钢筋计数分裂新方法,该算法采用凹点匹配进行分段,K级容错计数,并通过视觉反馈自动进行多次分裂。首先,它对棒的图像进行预处理,并使用连接区域分析获得粘附棒的边缘轮廓,然后扫描轮廓中的凹区域并找到凹点。其次,利用凹点匹配条件对分割后的单个条进行分割和计数,通过运动估计和K级容错算法达到计数目的。最后,提供视觉反馈,如果初步分割错误,请重新绘制分割线并再次驱动分割机制。实验结果表明,该方法具有很高的分割精度,可以准确地分割钢筋。直径在8mm到20mm之间的钢筋分割的准确率达到99.90%以上,满足企业公认的标准。

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