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A Human Head Detection Method Based on Center Point Estimation for Crowded Scene

机译:一种基于拥挤场景中心点估计的人头检测方法

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The head detector can effectively handle the Angle change of the head caused by motion, and the features required to capture are smaller. Therefore, human head detection is widely used in the practical application scenes of people positioning and counting. The existing head detector uses a large number of anchors which makes the detection efficiency low. And additional post-processing is required, which may result in the loss of real objects in a crowded scene. In this paper, we return to the bounding-box of the head by estimating the center point of the human head without using anchors and post-processing, which improves the detection efficiency. At the same time, we designed a random combination of data augmentation methods and improved the backbone network to improve the accuracy and robustness of the head detector in crowded scenes. Our method achieves excellent speed and precision performance on the SCUT-HEAD dataset, with 0.91 AP and 0.70 EER at 61.5 FPS.
机译:头检测器可以有效地处理由运动引起的头的角度变化,并且捕获所需的特征较小。因此,人头检测广泛用于人们定位和计数的实际应用场景中。现有的头检测器使用大量锚点,这使得检测效率低。并且需要额外的后处理,这可能导致拥挤的场景中的真实物体丢失。在本文中,我们通过估计人头的中心点而不使用锚和后处理来返回头部的边界盒,这提高了检测效率。同时,我们设计了数据增强方法的随机组合,并改进了骨干网络,以提高头部检测器在拥挤的场景中的准确性和鲁棒性。我们的方法在Scut-Head数据集上实现了出色的速度和精度性能,0.91 AP和61.5 FPS的0.70 eer。

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