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Weakly Supervised Crowd-Wise Attention For Robust Crowd Counting

机译:缺乏监督的明智人群关注稳健的人群计数

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Due to a wide range of various application scenes, robust crowd counting is still quite difficult and the performance is far from being satisfied. In this paper, we propose a novel robust crowd counting method by introducing a weakly supervised crowd-wise attention network. The proposed work improves the counting accuracy and robustness by: i) Weakly-supervised crowd segmentation. With a generated segmentation label using motion-guided region-growth, both the appearance feature of one-labeled image and motion features abstracted from its adjacent unlabeled frames, are combined to implement weakly supervised crowd region segmentation, with which active crowd region can be finely perceived from different background disturbances. ii) More accurate spatial attention. We generate a spatial attention map based on the active crowd segmentation, which is used to reweigh the appearance feature to achieve attention-based density estimation. Evaluation of the widely used World Expo’ 10 dataset shows that the proposed work can achieve state-of-the-art performance on both accuracy and robustness.
机译:由于各种应用场景广泛,强大的人群计数仍然非常困难,并且性能远非满足。在本文中,我们通过引入弱监督人群关注网络提出了一种新颖的鲁棒人群计数方法。拟议的工作通过以下方式提高了计数准确性和鲁棒性:i)弱监督人群细分。使用产生运动引导区域的生成的分割标签 - 从其相邻的未标记帧抽象的单个标记图像和运动特征的外观特征都组合以实现弱监管的人群区分割,其中有源人群区域可以精细地从不同的背景干扰中感知。 ii)更准确的空间关注。我们基于主动人群分割生成空间注​​意图,该地图用于重新掌握外观特征以实现基于关注的密度估计。广泛使用的世界博览会10个数据集的评估表明,拟议的工作可以实现最先进的性能,以准确性和鲁棒性。

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