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Sling Bag and Backpack Detection for Human Appearance Semantic in Vision System

机译:视觉系统中人类外观语义的吊带袋和背包检测

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摘要

In many intelligent surveillance systems there is a requirement to search for people of interest through archived semantic labels. Other than searching through typical appearance attributes such as clothing color and body height, information such as whether a person carries a bag or not is valuable to provide more relevant targeted search. We propose two novel and fast algorithms for sling bag and backpack detection based on the geometrical properties of bags. The advantage of the proposed algorithms is that it does not require shape information from human silhouettes therefore it can work under crowded condition. In addition, the absence of background subtraction makes the algorithms suitable for mobile platforms such as robots. The system was tested with a low resolution surveillance video dataset. Experimental results demonstrate that our method is promising.
机译:在许多智能监控系统中,需要通过存档的语义标签搜索感兴趣的人。 除了搜索典型的外观属性,如服装颜色和身体高度,信息诸如人是否携带袋子是有价值的,以提供更相关的目标搜索。 基于袋的几何特性,我们提出了两种新颖和快速的吊带和背包检测算法。 所提出的算法的优点在于它不需要来自人类轮廓的形状信息,因此它可以在拥挤的状态下工作。 此外,没有背景减法使得适用于诸如机器人的移动平台的算法。 使用低分辨率监控视频数据集进行测试。 实验结果表明,我们的方法很有前景。

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