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Risk-based adaptive scheduling in randomly deployed video sensor networks for critical surveillance applications

机译:随机部署的视频传感器网络中基于风险的自适应调度,用于关键监视应用

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摘要

In randomly deployed visual wireless sensor networks for surveillance applications, the scheduling of sensor nodes can be seen from the risk perspective: different parts of the area of interest may have different risk levels according to the pattern of observed events such as the number of detected intrusions. In this paper, we propose a multiple-level activity model that uses behavior functions to define application classes and allows for adaptive scheduling based on the application criticality and on the availability of multiple cover sets per sensor node. The paper then describes how an adaptive scheduling model can be defined in order to dynamically schedule nodes by varying the capture speed according to nodes' environment. Simulation results are presented to validate the performance of the proposed approach in terms of percentage of active nodes, percentage of coverage and stealth time under intrusion scenarios.
机译:在用于监视应用程序的随机部署的视觉无线传感器网络中,可以从风险角度看待传感器节点的调度:根据观察到的事件的模式(例如,检测到的入侵次数),关注区域的不同部分可能具有不同的风险级别。 。在本文中,我们提出了一个多级活动模型,该模型使用行为函数来定义应用程序类别,并允许基于应用程序的关键程度以及每个传感器节点的多个覆盖集的可用性进行自适应调度。然后,本文描述了如何定义自适应调度模型,以便根据节点的环境通过更改捕获速度来动态调度节点。仿真结果表明,在入侵场景下,根据活动节点的百分比,覆盖范围的百分比和隐身时间,可以验证所提出方法的性能。

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