基于计算机视觉的射击目标自动评分

F. Ali, A. Bin Mansoor
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引用次数: 9

摘要

基于计算机视觉的评分系统以其易于实现和经济高效的特点,打破了炮弹冲击波振幅系统等自动评分系统的垄断。提出了一种基于计算机视觉的射击目标自动评分方法。我们对目标图像进行形态学处理,以加厚子弹命中的边界,然后通过迟滞阈值分割目标区域。光照变化的影响由可调阈值处理。利用距离变换对目标靶心进行分割,计算靶心内的得分。因此,我们的方法能够分别在靶心内和靶心外得分。分割目标区域后对子弹命中进行标记,并通过定义子弹命中的阈值像素区域对重叠的子弹进行评分。在100张不同子弹命中数的目标图像上进行了测试,结果表明该算法的子弹计数准确率达到98.3%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computer Vision based Automatic Scoring of shooting targets
Computer vision based scoring system can break the monopoly of other automatic scoring systems like shell shockwave amplitude system due to its ease of implementation and cost effectiveness. This paper presents a computer vision based automatic scoring method for the shooting targets. We perform morphological processing of the target image to thicken the boundaries of the bullet hits and then segment the target area by hysteresis thresholding. The impact of illumination variations is handled by adjustable thresholds. The bulls eye of the target is segmented by the help of distance transform to calculate the score inside the bulls eye. Thus, our method is capable of scoring inside and outside the bulls eye separately. The bullet hits are labeled after the segmentation of the target area and the overlapping bullets are also scored by defining a threshold pixel area for the bullet hits. The proposed algorithm is tested on 100 target images with varying number of bullets hit, resulting in bullet count accuracy of 98.3%.
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