DocumentCode
2352050
Title
Fidelity-Aware Utilization Control for Cyber-Physical Surveillance Systems
Author
Chen, Jinzhu ; Tan, Rui ; Xing, Guoliang ; Wang, Xiaorui ; Fu, Xing
Author_Institution
Michigan State Univ., East Lansing, MI, USA
fYear
2010
fDate
Nov. 30 2010-Dec. 3 2010
Firstpage
117
Lastpage
126
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.
Keywords
ad hoc networks; feedback; sensor fusion; surveillance; wireless sensor networks; ad hoc surveillance; cameras; cyber-physical surveillance systems; data fusion; feedback control; fidelity-aware utilization control; low-end sensors; mission-critical applications; system sensing fidelity; timeliness; unplanned environments;
fLanguage
English
Publisher
ieee
Conference_Titel
Real-Time Systems Symposium (RTSS), 2010 IEEE 31st
Conference_Location
San Diego, CA
ISSN
1052-8725
Print_ISBN
978-0-7695-4298-0
Type
conf
DOI
10.1109/RTSS.2010.40
Filename
5702223
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