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Detection of Pedestrians in Road Context for Intelligent Vehicles and Advanced Driver Assistance Systems

机译:智能车辆和先进驾驶辅助系统的道路背景下的行人检测

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Pedestrian detection is one of the key issues of the intelligent vehicles and advanced driver assistance systems (ADAS) used in the daily urban traffic. This paper addresses a system designed for finding the pedestrians in the road context, which can enhance the pedestrian detection performance based on the contextual correlations. More specifically, stereo vision is employed to seek the free road space based on a Markov Random Field (MRF). Such information is then used for correlation with the pedestrian detection procedure, which is based on a deformable part-based model with histogram of oriented gradient (HOG) features. Experimental results in various typical but challenging scenarios show the effectiveness of the proposed system.
机译:行人检测是日常城市交通中使用的智能车辆和高级驾驶员辅助系统(ADA)的关键问题之一。本文解决了一个设计用于在道路上下文中寻找行人的系统,这可以基于上下文相关性提高行人检测性能。更具体地,使用立体声愿景来寻求基于马尔可夫随机场(MRF)的自由道路空间。然后,这些信息用于与行人检测过程相关,其基于具有面向梯度(HOG)特征的直方图的可变形零件的模型。各种典型但具有挑战性的情况的实验结果表明了所提出的系统的有效性。

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