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Attend to count: Crowd counting with adaptive capacity multi-scale CNNs

机译:参与计数:具有自适应容量的多尺度CNN的人群计数

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摘要

Crowd counting is a challenging task due to the large variations in crowd distributions. Previous methods tend to tackle the whole image with a single fixed structure, which is unable to handle diverse complicated scenes with different crowd densities. Hence, we propose the Adaptive Capacity Multi-scale convolutional neural networks (ACM-CNN), a novel crowd counting approach which can assign different capacities to different portions of the input. The intuition is that the model should focus on important regions of the input image and optimize its capacity allocation conditioning on the crowd intensive degree. ACM-CNN consists of three types of modules: A coarse network, a fine network, and a smooth network. The coarse network is used to explore the areas that need to be focused via count attention mechanism, and generate a rough feature map. Then the fine network processes the areas of interest into a fine feature map. To alleviate the sense of division caused by fusion, the smooth network is designed to combine two feature maps organically to produce high-quality density maps. Extensive experiments are conducted on five mainstream datasets. The results demonstrate the effectiveness of the proposed model for both density estimation and crowd counting tasks. (C) 2019 Elsevier B.V. All rights reserved.
机译:由于人群分布的巨大差异,人群计数是一项具有挑战性的任务。先前的方法倾向于使用单个固定结构来处理整个图像,该结构无法处理具有不同人群密度的各种复杂场景。因此,我们提出了自适应容量多尺度卷积神经网络(ACM-CNN),这是一种新颖的人群计数方法,可以为输入的不同部分分配不同的容量。直觉是该模型应关注输入图像的重要区域,并根据人群密集程度优化其容量分配条件。 ACM-CNN由三种类型的模块组成:粗略网络,精细网络和平滑网络。粗糙网络用于通过计数注意机制来探索需要聚焦的区域,并生成粗糙特征图。然后,精细网络将关注区域处理为精细特征图。为了减轻由融合引起的分割感,平滑网络被设计为将两个特征图有机地结合起来以生成高质量的密度图。在五个主流数据集上进行了广泛的实验。结果证明了该模型对于密度估计和人群计数任务的有效性。 (C)2019 Elsevier B.V.保留所有权利。

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