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A model based method of pedestrian abnormal behavior detection in traffic scene

机译:一种基于模型的交通场景行人异常行为检测方法

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In order to reduce traffic accidents caused by the pedestrian, five kinds of dangerous pedestrian abnormal behaviors are studied in the paper. A behavior model between the pedestrian trajectory and the road is built to describe the five kinds of dangerous pedestrian abnormal behaviors: crossing road border, illegal stay, crossing the road, moving along the curb, entering road area. The method contains pedestrian detection, shadow elimination, pedestrian recognition, pedestrian tracking and abnormal behavior detection. Background subtraction method is used to detect moving targets. After shadow elimination, pedestrians are distinguished from vehicles according to the ratio. Then, pedestrian trajectories are gotten by pedestrian tracking. Finally, based on the relation between trajectory and road, the model of five kinds of pedestrian abnormal behaviors is established, and abnormal behaviors are detected according this model. Experiments show that the method can distinguish and detect the pedestrian abnormal behaviors effectively in short time, and it is suitable to use in real time traffic monitoring.
机译:为了减少行人造成的交通事故,本文研究了五种危险的行人异常行为。建立了行人轨迹与道路之间的行为模型,以描述五种危险的行人异常行为:过马路边界,非法逗留,过马路,沿路缘行驶,进入道路区域。该方法包括行人检测,阴影消除,行人识别,行人跟踪和异常行为检测。背景减法用于检测运动目标。消除阴影后,根据比例将行人与车辆区分开。然后,通过行人跟踪获得行人轨迹。最后,基于轨迹与道路的关系,建立了五种行人异常行为的模型,并根据该模型对异常行为进行了检测。实验表明,该方法能够在短时间内有效地识别和检测行人的异常行为,适用于实时交通监控。

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