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Moving object surveillance using object proposals and background prior prediction

机译:使用对象建议和背景之前预测移动对象监视

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In this paper, a moving object detection algorithm is combined with a background estimate and a Bing (Binary Norm Gradient) object is proposed in video surveillance. A simple background estimation method is used to detect rough images of a group of moving foreground objects. The foreground setting in the foreground will estimate another set of candidate object windows, and the target (pedestrian/vehicle) from the intersection area comes from the first two steps. In addition, the time cost is reduced by the estimated area. Experiments on outdoor datasets show that the proposed method can not only achieve high detection rate (DR), but also reduce false alarm rate (FAR) and time cost. (C) 2019 Published by Elsevier Inc.
机译:在本文中,将移动物体检测算法与背景估计和冰(二元规范梯度)对象组合在视频监控中。简单的背景估计方法用于检测一组移动前景对象的粗糙图像。前台中的前景设置将估计另一组候选对象窗口,并且来自交叉点区域的目标(行人/车辆)来自前两个步骤。此外,估计区域减少了时间成本。室外数据集的实验表明,该方法不仅可以实现高检测率(DR),还可以降低误报率(远)和时间成本。 (c)2019年由elsevier公司发布

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