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Probability estimation for an automotive Pre-Crash application with short filter settling times

机译:滤波器建立时间短的汽车碰撞前应用的概率估计

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In this paper, the merits of incorporating covariance propagation into a real-time Pre-Crash application are investigated. The suggested Pre-Crash algorithm activates restraint systems, such as a reversible seat belt tightening system, before an unavoidable accident happens. Sensor fusion of two short-range and one long-range radar with a target-based fusion is used to realize this vehicle safety application. A powerful, yet applicable method for using not only state but also covariance information for triggering actuators is proposed. A comprehensive parameter study on simulated as well as on real data shows statistically significant improvements in detection rate. Further, the importance of covariance errors in terms of accuracy for Pre-Crash applications is demonstrated. Even with few detection cycles and short filter settling times, a good compromise between detection rate and false alarms can be deduced.
机译:在本文中,研究了将协方差传播结合到实时的Pre-Crash应用程序中的优点。建议的“碰撞前算法”在不可避免的事故发生之前启动约束系统,例如可逆安全带拉紧系统。两台近距离和一台远程雷达的传感器融合与基于目标的融合被用于实现这种车辆安全应用。提出了一种功能强大但可应用的方法,该方法不仅使用状态,还使用协方差信息来触发执行器。对模拟和真实数据进行的全面参数研究显示,检测率在统计学上有显着提高。此外,证明了协方差误差在碰撞前应用程序的准确性方面的重要性。即使检测周期短且滤波器建立时间短,也可以推断出检测率与错误警报之间的良好折衷。

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