基于动物群体行为减少道路交通事故的智能超车模型

Spandana Mounica. U, Praveen Mande, Swathi Mugada
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引用次数: 2

摘要

人的生命正受到交通事故的极大威胁。超车事故造成的威胁更大。动物群体有规律的行为机制促进了包括群体模拟在内的各个技术领域的发展。在此基础上,本文开发了分别对前方车辆和后方车辆进行超车可能性检查算法(OPC)和超车算法(OT)。该算法通过车辆之间的相互通信,为避免超车事故提供了一种新的机制。拟议系统的各个组成部分协同工作,以指示超车的可能性,并详细审查建议的速度和轨迹。在其他不可能立即超车的情况下,建议前车减速。确保在整个过程中保持安全距离,从而避免尾随。车辆周围的安全范围空间被认为是一个椭圆形状的边界。如果无法保持安全距离,即车辆的椭圆区域之间存在大量重叠,则该算法不允许超车。通过对上述模型的仿真可知,算法在实时场景下的动态实现,有可能减少超车事故的发生。
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The intelligent overtaking model for reducing road accidents based on animal group behavior
Human lives are being greatly menaced by road accidents. Accidents due to overtaking pose an even greater threat. Disciplined behavioral mechanisms of animal groups have promoted development in various technological fields including crowd simulation. On this basis, the proposed work develops Overtaking Possibility Check Algorithm (OPC) and the Overtaking Algorithm (OT) which operates on the front and the rear vehicles respectively. The algorithms provide a new mechanism for avoiding accidents due to overtaking by mutual communication between them. The various components of the proposed system work in collaboration to indicate the possibilities to overtake with detailed review of the recommended speed, trajectories. In other scenarios where immediate overtaking is not possible a suggested deceleration of the front vehicle is recommended. It is ensured that the safe distances are maintained throughout the process thus avoiding tailgating as well. The safe range space around the vehicle is considered to be delimited by an ellipse shaped boundary. The algorithm refrains to allow overtaking if the safe distances cannot be maintained i.e. if there is a significant amount of overlap between the ellipse regions of the vehicles. After the simulation of the above model it is inferred that algorithm's dynamic implementation in real time scenario could potentially reduce the number of accidents occurring due to overtaking.
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