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Fuzzy Logic Based Human Activity Recognition in Video Surveillance Applications

机译:基于模糊逻辑的视频监控应用中的人类活动识别

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Automatic fall detection using computer vision is a particular case for real time video analysis, efficient in kindergartens. This paper is focused on the design and implementation of a Human activity analysis system. The multiple cameras sends captured frames to the monitoring system via the local network. Through the use of human silhouette, acquired from a smart camera, a shape representation of the human beings was built in real-time and a fuzzy logic inference system was developed for fall detection. The system also allows tracking and localizing children within an authorized area. The alarm is triggered in case of transgression. Experimental results prove that the fuzzy inference system is efficient.
机译:使用计算机视觉自动下降检测是一个特别的实时视频分析,幼儿园有效的特定情况。本文专注于人类活动分析系统的设计和实现。多个摄像机通过本地网络向监视系统发送捕获的帧。通过使用从智能摄像机获取的人体轮廓,人类的形状表示是实时建立的,并且开发了模糊逻辑推断系统进行了坠落检测。该系统还允许跟踪和本地化授权区域内的儿童。在违规的情况下触发警报。实验结果证明了模糊推理系统是有效的。

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