DocumentCode :
2580134
Title :
Identifying cyber attacks via local model information
Author :
Pasqualetti, Fabio ; Carli, Ruggero ; Bicchi, Antonio ; Bullo, Francesco
Author_Institution :
Center for Control, Dynamical Syst. & Comput., Univ. of California at Santa Barbara, Santa Barbara, CA, USA
fYear :
2010
fDate :
15-17 Dec. 2010
Firstpage :
5961
Lastpage :
5966
Abstract :
This work considers the problem of detecting corrupted components in a large scale decentralized system via local model information. The electric power system, the transportation system, and generally any computer or network system are examples of large scale systems for which external (cyber) attacks have become an important threat. We consider the case of linear networks, and we model a cyber attack as an exogenous input that compromises the behavior of a set of components. We exploit two distributed methods that rely on two different sets of assumptions to achieve detection and identification. The first method takes advantage of the presence in the network of weakly interconnected subparts, it requires limited knowledge of the network model, and it affords local detection and identification of misbehaving components whose behavior deviates more than a threshold. The second method relies on the presence of a set of trustworthy leaders with better computation and communication capabilities. Only relying on a partial knowledge of the network model, the leaders cooperatively detect and identify misbehaving components.
Keywords :
large-scale systems; multivariable systems; security of data; computer system; cyber attacks identification; electric power system; large scale decentralized system; linear networks; local model information; network system; transportation system; Bismuth; Computational modeling; Knowledge engineering; Lead; Linear systems; Silicon; State estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control (CDC), 2010 49th IEEE Conference on
Conference_Location :
Atlanta, GA
ISSN :
0743-1546
Print_ISBN :
978-1-4244-7745-6
Type :
conf
DOI :
10.1109/CDC.2010.5717914
Filename :
5717914
Link To Document :
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