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BODY PARTS FEATURES-BASED PEDESTRIAN DETECTION FOR ACTIVE PEDESTRIAN PROTECTION SYSTEM

机译:主动行人保护系统中基于身体部位特征的行人检测

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摘要

A novel pedestrian detection system based on vision in urban traffic situations is presented to help the driver perceive the pedestrian ahead of the vehicle. To enhance the accuracy and to decrease the time spent on pedestrian detection in such complicated situations, the pedestrian is detected by dividing their body into several parts according to their corresponding features in the image. The candidate pedestrian leg is segmented based on the gentle AdaBoost algorithm by training the optimized histogram of gradient features. The candidate pedestrian head is located by matching the pedestrian head and shoulder model above the region of the candidate leg. Then the candidate leg, head and shoulder are combined by parts constraint and threshold adjustment to verify the existence of the pedestrian. Finally, the experiments in real urban traffic circumstances were conducted. The results show that the proposed pedestrian detection method can achieve pedestrian detection rate of 92.1% with the average detection time of 0.2257 s.
机译:提出了一种基于城市交通情况下视觉的新型行人检测系统,以帮助驾驶员感知车辆前方的行人。为了提高准确性并减少在这种复杂情况下花费在行人检测上的时间,通过根据图像中相应的特征将行人的身体分成几部分来检测行人。通过训练梯度特征的优化直方图,基于温和的AdaBoost算法对候选行人腿进行分段。通过在候选腿部区域上方匹配行人头肩模型来定位候选行人头。然后通过部分约束和阈值调整将候选的腿,头和肩膀组合在一起,以验证行人的存在。最后,在实际城市交通情况下进行了实验。结果表明,所提出的行人检测方法可以达到92.1%的行人检测率,平均检测时间为0.2257 s。

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