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Stereo-based pedestrian detection in crosswalks for pedestrian behavioural modelling assessment

机译:人行横道中基于立体的行人检测,用于行人行为模型评估

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In this paper, a stereo- and infrastructure-based pedestrian detection system is presented to deal with infrastructure-based pedestrian safety measurements as well as to assess pedestrian behaviour modelling methods. Pedestrian detection is performed by region growing over temporal 3D density maps, which are obtained by means of stereo reconstruction and background modelling. 3D tracking allows to correlate the pedestrian position with the different pedestrian crossing regions (waiting and crossing areas). As an example of an infrastructure safety system, a blinking luminous traffic sign is switched on to warn the drivers about the presence of pedestrians in the waiting and the crossing regions. The detection system provides accurate results even for nighttime conditions: an overall detection rate of 97.43% with one false alarm per each 10 minutes. In addition, the proposed approach is validated for being used in pedestrian behaviour modelling, applying logistic regression to model the probability of a pedestrian to cross or wait. Some of the predictor variables are automatically obtained by using the pedestrian detection system. Other variables are still needed to be labelled using manual supervision. A sequential feature selection method showed that time-to-collision and pedestrian waiting time (both variables automatically collected) are the most significant parameters when predicting the pedestrian intent. An overall predictive accuracy of 93.10% is obtained, which clearly validates the proposed methodology.
机译:在本文中,提出了一种基于立体声和基于基础设施的行人检测系统,以处理基于基础设施的行人安全测量以及评估行人行为建模方法。行人检测是通过在时间3D密度图上生长的区域执行的,该区域通过立体重建和背景建模获得。 3D跟踪允许将行人位置与不同的行人过路区域(等待和过路区域)相关联。作为基础设施安全系统的一个示例,一个闪烁的发光交通标志被打开,以警告驾驶员在等候区和过境区存在行人。该检测系统甚至在夜间条件下也能提供准确的结果:总检测率为97.43%,每10分钟出现一次误报。此外,所提出的方法已被验证可用于行人行为建模,应用逻辑回归来对行人过马或等待的概率进行建模。通过使用行人检测系统可以自动获取一些预测变量。其他变量仍需要使用人工监督进行标记。顺序特征选择方法表明,在预测行人意图时,碰撞时间和行人等待时间(两个变量都会自动收集)是最重要的参数。总体预测准确性为93.10%,这清楚地验证了所提出的方法。

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