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Behaviour recognition of ground vehicle using airborne monitoring of unmanned aerial vehicles

机译:利用无人驾驶飞机的机载监测识别地面车辆的行为

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This paper proposes a behaviour recognition methodology for ground vehicles moving within road traffic using unmanned aerial vehicles in order to identify suspicious or abnormal behaviour. With the target information acquired by unmanned aerial vehicles and estimated by filtering techniques, ground vehicle behaviour is first classified into representative driving modes, and then a string pattern matching theory is applied to detect suspicious behaviours in the driving mode history. Furthermore, a fuzzy decision-making process is developed to systematically exploit all available information obtained from a complex environment and confirm the characteristic of behaviour, while considering spatiotemporal environment factors as well as several aspects of behaviours. To verify the feasibility and benefits of the proposed approach, numerical simulations on moving ground vehicles are performed using realistic car trajectory data from an off-the-shelf traffic simulation software.
机译:为了识别可疑或异常行为,本文提出了一种在地面交通中使用无人驾驶飞行器的行为识别方法。利用无人机获取的目标信息并通过滤波技术对目标信息进行估计,首先将地面车辆的行为分类为代表性的驾驶模式,然后将字符串模式匹配理论应用于在驾驶模式历史中检测可疑行为。此外,在考虑时空环境因素以及行为的多个方面的同时,开发了一种模糊决策过程,以系统地利用从复杂环境中获得的所有可用信息并确认行为的特征。为了验证该方法的可行性和益处,使用来自现成交通模拟软件的真实汽车轨迹数据对移动地面车辆进行了数值模拟。

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