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Deformable part model based multiple pedestrian detection for video surveillance in crowded scenes

机译:基于可变形部分模型的多行人检测,用于拥挤场景中的视频监控

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Pedestrian detection is a challenging task for video surveillance. The problem becomes more difficult when occlusion is prevalent. In this paper, we extend a deformable part-based pedestrian detector to pedestrian detection in crowded scenes by considering both body part detection responses and detections' mutual spatial relationship. Specifically, we first decompose the full body detector into several body part detectors, whose detection responses can be computed efficiently from the response of the full body detector. Then, given the detection responses of the body part detectors, hypotheses are nominated by considering both detection scores and responses' mutual spatial relationship. Finally, a local optimization process is applied to make the final decision, where an objective function encouraging detections with high confidence, high discriminability and low conflict with other detections is proposed to select the best candidate detections. Experimental results show the effectiveness of the proposed approach.
机译:行人检测对于视频监控而言是一项艰巨的任务。当阻塞很普遍时,该问题将变得更加困难。在本文中,我们将可变形的基于部分的行人检测器扩展到拥挤场景中的行人检测,同时考虑了身体部位检测响应和检测之间的相互空间关系。具体而言,我们首先将全身检测器分解为几个身体部位检测器,可以从全身检测器的响应中高效地计算出其检测响应。然后,给定身体部位检测器的检测响应,通过考虑检测分数和响应之间的相互空间关系来提名假设。最后,应用局部优化过程做出最终决策,其中提出了一个鼓励以高置信度,高可区分性和与其他检测的低冲突性进行检测的目标函数,以选择最佳候选检测。实验结果表明了该方法的有效性。

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