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A Study on Pedestrian Detection Models Based on Real Accident Data from IVAC Database in Changsha of China

机译:基于长沙IVAC数据库实际事故数据的行人检测模型研究。

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This study aims to evaluate the probabilities of pedestrian detection within the response time of vehicle collision avoidance system of a car. For this purpose, the carpedestrian accident scenarios were analyzed using selected data from the IVAC accident database, in which the cases were collected from in depth investigations of the accidents in Changsha of China. The selection criteria were: (1) the accident occurred between 2001 and 2008; (2) the accident involved a passenger car, SUV, MPV or pick-up truck; (3) the pedestrian was not standing still before impact. Based on these criteria, 389 car-pedestrian cases were selected. The two most common scenarios (F1 and F2) were identified as the pedestrian crossing a straight road from the left (F1) or the right (F2) of the drivers. A mathematical model was developed with the frontal impact cases of F1 or F2 scenario. The following four parameters describing the configuration before the accident were studied: the trajectory and speed for both the car and the pedestrian. Considering the different half detective angles of the sensor system (15 degree, 30 degree, 45 degree), the probabilities of pedestrian detection were calculated. It was found that when the half detective angle was equal or larger than 30 degrees the sensor system could detect more than 94% of the pedestrians in both evaluated scenarios.
机译:这项研究旨在评估在车辆避撞系统的响应时间内行人检测的可能性。为此,使用IVAC事故数据库中的选定数据对行人事故场景进行了分析,这些数据是从对中国长沙事故的深入调查中收集的。选择标准为:(1)该事故发生在2001年至2008年之间; (2)涉及乘用车,SUV,MPV或皮卡车的事故; (3)行人在撞击前没有停下来。基于这些标准,选择了389个行人案例。两种最常见的场景(F1和F2)被确定为行人从驾驶员的左侧(F1)或右侧(F2)穿过直路。建立了具有F1或F2情景正面影响案例的数学模型。研究了以下四个描述事故前配置的参数:汽车和行人的轨迹和速度。考虑到传感器系统的一半检测角度(15度,30度,45度),计算了行人检测的概率。结果发现,当两个探测场景中的一半探测角度等于或大于30度时,传感器系统可以探测到94%以上的行人。

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