基于相机阵列和机器学习的实时智能态势感知

Fenghui Yao, Guifeng Shao
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引用次数: 0

摘要

本文提出了一种基于监控摄像头阵列和机器学习技术的实时态势感知系统。监控摄像机阵列由多台PTZ摄像机组成,分为大面积摄像机和局部摄像机两类。大面积摄像机用于检测整个运动目标(如人、车),局部摄像机用于检测运动目标的特定区域(如人脸、汽车牌照)。通过对视频序列进行短时和长时分析,识别出被检测到的运动目标的正常或异常行为。此外,检测到的人脸被馈送到人脸识别子系统,以确定该人是否已知。实验结果表明,所提出的态势感知系统是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-time Smart Situation Awareness based on Camera Array and Machine Learning
This paper proposes a real-time situation awareness system based on a surveillance camera array and machine learning techniques. The surveillance camera array consists of multiple PTZ cameras which are divided into two classes: large area cameras and local area cameras. Large area cameras are used to detect whole moving targets (e.g. persons, cars) and local area cameras are used to detect a specific area of the moving targets (e.g. person faces, car license plates). The behaviors of the detected moving targets are recognized to be normal or abnormal by combining shortterm and long-term video sequence analyses. Furthermore, the detected faces are fed to a face recognition subsystem to determine whether the person is known or not. The experimental results show the proposed situation awareness system is effective and useful.
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