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Multiple pedestrians tracking algorithm by incorporating histogram of oriented gradient detections

机译:结合定向梯度检测的直方图的多行人跟踪算法

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The authors propose an effective algorithm for multiple pedestrians tracking, which is constructed in the framework of particle filtering, and it is based on the combination of online boosting tracker and the histogram of oriented gradient (HOG) descriptor for human detection. The combination for the detector and tracker lies on following aspects. First, each detection result is associated to a tracker implemented by the online boosting, which gives the authors scheme robustness for multiple similar objects and then, the output of support vector machine classifier based on HOG is dynamically fused as a component in the observation metric in particle filtering, which makes the tracker more accurate in some difficult conditions. Finally, the states of some particles are replaced by the state given by the detector, so that the tracker can recover from failure quickly. Experiments show the effectiveness of their scheme.
机译:作者提出了一种有效的多行人跟踪算法,该算法是在粒子滤波的框架内构造的,它是基于在线加速跟踪器和定向梯度直方图(HOG)描述符的组合进行人体检测的。检测器和跟踪器的组合取决于以下几个方面。首先,每个检测结果都与通过在线boosting实现的跟踪器相关联,从而为作者提供了多个相似对象的方案鲁棒性,然后,将基于HOG的支持向量机分类器的输出动态融合为观测指标中的一个组成部分。粒子过滤,这使跟踪器在某些困难的条件下更加准确。最后,一些粒子的状态被检测器给出的状态所替代,以便跟踪器可以快速从故障中恢复。实验证明了该方案的有效性。

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    《Image Processing, IET》 |2013年第7期|653-659|共7页
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