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首页> 外文期刊>EURASIP journal on embedded systems >Adaptive Probabilistic Tracking Embedded in Smart Cameras for Distributed Surveillance in a 3D Model
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Adaptive Probabilistic Tracking Embedded in Smart Cameras for Distributed Surveillance in a 3D Model

机译:嵌入在智能相机中的自适应概率跟踪,用于3D模型中的分布式监视

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摘要

Tracking applications based on distributed and embedded sensor networks are emerging today, both in the fields of surveillance and industrial vision. Traditional centralized approaches have several drawbacks, due to limited communication bandwidth, computational requirements, and thus limited spatial camera resolution and frame rate. In this article, we present network-enabled smart cameras for probabilistic tracking. They are capable of tracking objects adaptively in real time and offer a very bandwidthconservative approach, as the whole computation is performed embedded in each smart camera and only the tracking results are transmitted, which are on a higher level of abstraction. Based on this, we present a distributed surveillance system. The smart cameras' tracking results are embedded in an integrated 3D environment as live textures and can be viewed from arbitrary perspectives. Also a georeferenced live visualization embedded in Google Earth is presented.
机译:如今,在监视和工业视觉领域,基于分布式和嵌入式传感器网络的跟踪应用正在兴起。传统的集中式方法由于通信带宽有限,计算需求有限,因此空间相机分辨率和帧频也有限,因此具有多个缺点。在本文中,我们介绍了用于概率跟踪的支持网络的智能相机。它们能够实时自适应地跟踪对象,并提供非常节省带宽的方法,因为整个计算都嵌入在每个智能相机中,并且仅传输跟踪结果,而跟踪结果处于较高的抽象水平。基于此,我们提出了一种分布式监视系统。智能相机的跟踪结果作为实时纹理嵌入到集成的3D环境中,并且可以从任意角度进行查看。还介绍了嵌入Google Earth的地理参考实时可视化。

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