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Human-Vehicle Collision Detection Algorithm Based on Image Processing

机译:基于图像处理的人车碰撞检测算法

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In recent years, with the growth of China's economy and the development of the automobile manufacturing industry, the number of various vehicles has continuously increased, and the incidence of traffic accidents has also increased. Especially in traffic blind areas, right-turning areas of vehicles, etc., traffic accidents such as vehicle collisions are extremely easy to occur, which poses a serious threat to people's lives and property, and is extremely harmful. Therefore, related research on collision detection of people and vehicles has been traffic-safe and has received extensive attention from field researchers. At present, the research on human-vehicle collision detection is to detect human-vehicle collision accidents by tracking the track of vehicles and pedestrians, but there are problems such as poor tracking effect, low accuracy of collision discrimination and complex algorithms. Aiming at these problems, this paper studies the human-vehicle collision detection algorithm based on image processing. Through the image processing of traffic monitoring video, the vehicle and pedestrian contour information is extracted. Based on this, a mathematical model for collision detection is constructed to realize human-vehicle collision detection. The results show that the proposed method can effectively distinguish the collision between pedestrians and vehicles, and the algorithm for image processing is simpler than the traditional tracking algorithm, and the time is shorter. The results show that the image-based collision detection algorithm based on image processing can effectively and quickly identify the traffic accidents in which people and vehicles collide, and then can issue alarm signals in time, shortening the accident processing time and reducing the accident time. The possibility of a secondary accident has a high practicability in the detection of traffic accidents in which people and vehicles collide.
机译:近年来,随着中国经济的增长和汽车制造业的发展,各车辆的数量不断增加,交通事故的发生率也增加了。特别是在交通盲区,车辆右转区域等,诸如车辆碰撞的交通事故是非常容易发生的,这对人们的生活和财产构成了严重的威胁,并且极为有害。因此,有关人民和车辆碰撞检测的相关研究已经是交通安全的,并从实地研究人员中获得了广泛的关注。目前,人工车祸检测的研究是通过跟踪车辆和行人的轨道来检测人车碰撞事故,但是存在差的跟踪效果,碰撞鉴别的低精度和复杂算法等问题。针对这些问题,本文研究了基于图像处理的人车碰撞检测算法。通过交通监控视频的图像处理,提取车辆和行人轮廓信息。基于此,构造了一种用于碰撞检测的数学模型以实现人车碰撞检测。结果表明,该方法可以有效地区分行人和车辆之间的碰撞,并且图像处理算法比传统的跟踪算法更简单,并且时间较短。结果表明,基于图像处理的基于图像的碰撞检测算法可以有效地识别人员和车辆碰撞的交通事故,然后可以及时发出警报信号,缩短事故处理时间并减少事故时间并减少事故时间。二次事故的可能性在检测人和车辆碰撞的交通事故中具有很高的实用性。

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