DocumentCode :
1616520
Title :
Anomaly detection in power system control center critical infrastructures using rough classification algorithm
Author :
Coutinho, Maurilio Pereira ; Lambert-Torres, G. ; da Silva, L.E.B. ; Martins, H.G. ; Lazarek, H. ; Neto, J. Cabral
Author_Institution :
Itajuba Fed. Univ., Itajuba, Brazil
fYear :
2009
Firstpage :
733
Lastpage :
738
Abstract :
Power system control centers are moving toward distributed and decentralized operations. The use of information technology (IT) to achieve these goals produces vulnerabilities and security threats. To safeguard against the threat of cyber-attacks, service providers also need to maintain the accuracy, assurance and integrity of their interdependent data networks. This paper presents the results of the anomaly detection technique using rough sets classification algorithm for improving the security of power system control centers in the electric power system critical infrastructure. The methodology presented can be used to identify attacks and failures and, also, for improving the confidence of the state estimation process. A test environment is implemented and the results for a 6 bus electrical power system are presented.
Keywords :
SCADA systems; data mining; pattern classification; power system control; power system security; rough set theory; security of data; SCADA; anomaly detection; bus electrical power system; cyber-attacks; data mining; decentralized operation; distributed operation; electric power system critical infrastructure; information technology; power system control center critical infrastructures; rough sets classification algorithm; security threats; state estimation process; Classification algorithms; Communication system control; Control systems; Power system control; Power system modeling; Power system protection; Power system reliability; Power system security; Power systems; SCADA systems; Critical infrastructure protection; Power System Control Center; SCADA; data mining; detecting attacks; electric power system; rough set theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Ecosystems and Technologies, 2009. DEST '09. 3rd IEEE International Conference on
Conference_Location :
Istanbul
Print_ISBN :
978-1-4244-2345-3
Electronic_ISBN :
978-1-4244-2346-0
Type :
conf
DOI :
10.1109/DEST.2009.5276789
Filename :
5276789
Link To Document :
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