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Reduction of false alarms triggered by spiders/cobwebs in surveillance camera networks.

机译:减少监控摄像机网络中蜘蛛/蜘蛛网触发的误报。

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摘要

The percentage of false alarms caused by spiders in automated surveillance can range from 20-50%. False alarms increase the workload of surveillance personnel validating the alarms and the maintenance labor cost associated with regular cleaning of webs. We propose a novel, cost effective method to detect false alarms triggered by spiders/webs in surveillance camera networks. This is accomplished by building a spiderudclassifier intended to be a part of the surveillance video processing pipeline. The proposed method uses a feature descriptor obtained by early fusion of blur and texture. The approach is sufficiently efficient for real-time processing and yet comparable in performance with more computationally costly approaches like SIFT with bag of visual words aggregation.udThe proposed method can eliminate 98.5% of falseudalarms caused by spiders in a data set supplied by an industry partner, with a false positive rate of less than 1%
机译:在自动监视中,由蜘蛛引起的错误警报的百分比范围为20%至50%。虚假警报会增加监视人员验证警报的工作量,并增加与定期清洁网有关的维护人工成本。我们提出了一种新颖,经济高效的方法来检测由监视摄像机网络中的蜘蛛网/蜘蛛网触发的虚假警报。这是通过构建旨在作为监视视频处理管道一部分的Spider udclassifier来实现的。所提出的方法使用通过模糊和纹理的早期融合获得的特征描述符。该方法对于实时处理是足够有效的,但是在性能上却可以与更昂贵的计算方法(例如带有可视单词聚合的SIFT)相媲美。 ud提议的方法可以消除由蜘蛛提供的数据集中由蜘蛛引起的98.5%的假 udalarms行业合作伙伴,误报率低于1%

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