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Post-processing approaches for improving people detection performance

机译:用于改善人员检测性能的后处理方法

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摘要

People detection in video surveillance environments is a task that has been generating great interest. There are many approaches trying to solve the problem either in controlled scenarios or in very specific surveillance applications. We address one of the main problems of people detection in video sequences: every people detector from the state of the art must maintain a balance between the number of false detections and the number of missing pedestrians. This compromise limits the global detection results. In order to reduce or relax this limitation and improve the detection results, we evaluate two different post-processing subtasks. Firstly, we propose the use of people-background segmentation as a filtering stage in people detection. Then, we evaluate the combination of different detection approaches in order to add robustness to the detection and therefore improve the detection results. And, finally, we evaluate the successive application of both post-processing approaches. Experiments have been performed on two extensive datasets and using different people detectors from the state of the art: the results show the benefits achieved using the proposed post-processing techniques.
机译:视频监视环境中的人员检测是一项引起人们极大兴趣的任务。在受控方案或非常特定的监视应用程序中,有许多方法试图解决该问题。我们解决了视频序列中人员检测的主要问题之一:现有技术中的每个人员检测器都必须在错误检测的数量和失踪的行人数量之间保持平衡。这种折衷限制了全局检测结果。为了减少或放松此限制并改善检测结果,我们评估了两个不同的后处理子任务。首先,我们建议使用人背景分割作为人检测中的过滤阶段。然后,我们评估不同检测方法的组合,以增加检测的鲁棒性,从而改善检测结果。最后,我们评估了两种后处理方法的连续应用。已经在两个广泛的数据集上进行了实验,并使用了来自现有技术的不同人员检测器:结果显示了使用建议的后处理技术所获得的好处。

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