多传感器室内监控系统

V. Petrushin, Gang Wei, Omer Shakil, D. Roqueiro, A. Gershman
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引用次数: 39

摘要

本文描述了一个监控系统,该系统使用不同类型的传感器网络来定位和跟踪办公环境中的人员。传感器网络由摄像机、红外标签读取器、指纹读取器和PTZ摄像机组成。该系统实现了一个贝叶斯框架,该框架使用来自多个传感器流的噪声但冗余的数据,并将其与上下文和领域知识相结合。本文介绍了摄像机规格、动态背景建模、对象建模和概率推理的方法。给出了初步的实验结果并进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple-Sensor Indoor Surveillance System
This paper describes a surveillance system that uses a network of sensors of different kind for localizing and tracking people in an office environment. The sensor network consists of video cameras, infrared tag readers, a fingerprint reader and a PTZ camera. The system implements a Bayesian framework that uses noisy, but redundant data from multiple sensor streams and incorporates it with the contextual and domain knowledge. The paper describes approaches to camera specification, dynamic background modeling, object modeling and probabilistic inference. The preliminary experimental results are presented and discussed.
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