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Crash Probability and Error Rates for Head-On Collisions Based on Stochastic Analyses

机译:基于随机分析的正面碰撞的碰撞概率和错误率

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摘要

Active safety systems are developed in the automotive industry to help avoid or mitigate collisions. To develop collision-avoidance or mitigation systems, an appropriate lead time must be determined to provide a warning or action with acceptable false positive and negative rates. There has been much research on the lead time for the rear-end collision, but the lead time for the head-on collision has not been studied much because of the complexity of the loadcase. In this paper, the crash probabilities of the head-on collision were estimated, and adaptive lead times were proposed. In addition, false positive and false negative rates were assessed for some precrash sensor errors. For the assessment, an analytical vehicle model was validated against static and dynamic test data, and the driver's behaviors in normal and evasive maneuvers were surveyed and modeled. Using the analytical vehicle model and the driver models, stochastic analyses were conducted to assess the crash probability, the adaptive lead times, and the error rates.
机译:汽车行业开发了主动安全系统,以帮助避免或减轻碰撞。要开发避免碰撞或缓解碰撞的系统,必须确定适当的前置时间,以提供可接受的误报率和误报率的警告或行动。关于追尾碰撞的提前时间已经进行了很多研究,但是由于工况的复杂性,对正面碰撞的提前时间没有进行太多研究。本文估计了正面碰撞的碰撞概率,并提出了自适应提前期。此外,评估了一些碰撞前传感器错误的假阳性率和假阴性率。为了进行评估,针对静态和动态测试数据验证了分析型车辆模型,并对驾驶员在正常和躲避动作中的行为进行了调查和建模。使用分析型车辆模型和驾驶员模型,进行了随机分析,以评估碰撞概率,自适应提前期和错误率。

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