Fidelity-Aware Utilization Control for Cyber-Physical Surveillance Systems

Jinzhu Chen, R. Tan, G. Xing, Xiaorui Wang, Xing Fu
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引用次数: 4

Abstract

Recent years have seen the growing deployments of Cyber-Physical Systems (CPSs) in many mission-critical applications such as security, civil infrastructure, and transportation. These applications often impose stringent requirements on system sensing fidelity and timeliness. However, existing approaches treat these two concerns in isolation and hence are not suitable for CPSs where system fidelity and timeliness are dependent of each other because of the tight integration of computational and physical resources. In this paper, we propose a holistic approach called Fidelity-Aware Utilization Controller (FAUC) for Wireless Cyber-physical Surveillance (WCS) systems that combine low-end sensors with cameras for large-scale ad hoc surveillance in unplanned environments. By integrating data fusion with feedback control, FAUC can enforce a CPU utilization upper bound to ensure the system's real-time schedulability although CPU workloads vary significantly at runtime because of stochastic detection results. At the same time, FAUC optimizes system fidelity and adjusts the control objective of CPU utilization adaptively in the presence of variations of target/noise characteristics. We have implemented FAUC on a small-scale WCS testbed consisting of TelosB/Iris motes and cameras. Our extensive experiments on light and acoustic target detection show that FAUC can achieve robust fidelity and real-time guarantees in dynamic environments.
网络物理监控系统的保真度感知利用控制
近年来,在安全、民用基础设施和交通等许多关键任务应用中,网络物理系统(cps)的部署越来越多。这些应用通常对系统感知的保真度和及时性提出严格的要求。然而,现有的方法孤立地处理这两个问题,因此不适合cps,因为系统保真度和及时性由于计算资源和物理资源的紧密集成而相互依赖。在本文中,我们提出了一种称为保真度感知利用控制器(fac)的整体方法,用于无线网络物理监控(WCS)系统,该系统将低端传感器与摄像机相结合,用于在计划外环境中进行大规模的临时监控。通过将数据融合与反馈控制相结合,fac可以强制执行CPU利用率上限,以确保系统的实时可调度性,尽管CPU工作负载在运行时由于随机检测结果而变化很大。同时,fac在目标/噪声特性变化的情况下,优化系统保真度,自适应调整CPU利用率的控制目标。我们已经在一个小规模的WCS测试平台上实现了fac,该测试平台由TelosB/Iris motes和相机组成。我们对光和声目标检测的大量实验表明,fac可以在动态环境中实现鲁棒的保真度和实时性保证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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