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A real-time system for monitoring of cyclists and pedestrians

机译:实时监控骑行者和行人的系统

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Camera based systems are routinely used for monitoring highway traffic, supplementing inductive loops and microwave sensors employed for counting purposes. These techniques achieve very good counting accuracy and are capable of discriminating trucks and cars. However, pedestrians and cyclists are mostly counted manually. In this paper, we describe a new camera based automatic system that utilizes Kalman filtering in tracking and Learning Vector Quantization for classifying the observations to pedestrians and cyclists. Both the requirements for such systems and the algorithms used are described. The tests performed show that the system achieves around 80-90% accuracy in counting and classification.
机译:基于摄像头的系统通常用于监视高速公路交通,补充用于计数目的的感应环路和微波传感器。这些技术实现了非常好的计数精度,并且能够区分卡车和小汽车。但是,行人和骑自行车的人大多是手工计算的。在本文中,我们描述了一种新的基于相机的自动系统,该系统在跟踪和学习矢量量化中利用卡尔曼滤波对行人和骑自行车的人进行观察分类。描述了此类系统的要求和所使用的算法。进行的测试表明,该系统在计数和分类方面达到了约80-90%的精度。

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