Defending simple series and parallel systems with imperfect false targets

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review

41 Scopus Citations
View graph of relations

Author(s)

  • R. Peng
  • G. Levitin
  • M. Xie
  • S. H. Ng

Detail(s)

Original languageEnglish
Pages (from-to)679-688
Journal / PublicationReliability Engineering and System Safety
Volume95
Issue number6
Publication statusPublished - Jun 2010
Externally publishedYes

Abstract

This paper analyzes the optimal distribution of defense resources between protecting the genuine system elements and deploying imperfect false targets (FTs) in simple series and parallel systems. The FTs are not perfect and the attacker can detect a FT with a non-zero probability. Once the attacker has detected certain number of FTs, it ignores them and chooses such number of undetected targets to attack that maximizes the expected damage to the system. The defender decides how many FTs to deploy in order to minimize the expected damage to the system assuming that the attacker uses the most harmful strategy to attack. The expected damage to a series system is proportional to the probability of system destruction. The expected damage to a parallel system can be defined as proportional to the probability that the demand is not met, or as the amount of the unsupplied demand. The paper demonstrates the methodology of analysis of optimal defense strategy as function of different parameters (number of genuine system elements, contest intensity, total attacker's resource). It presents the decision curves that can be used for the making a decision about efficiency of deploying FTs depending on their cost and detection probability. © 2010 Elsevier Ltd. All rights reserved.

Research Area(s)

  • Attack, Defense, False targets, Parallel systems, Series systems, Vulnerability

Citation Format(s)

Defending simple series and parallel systems with imperfect false targets. / Peng, R.; Levitin, G.; Xie, M. et al.
In: Reliability Engineering and System Safety, Vol. 95, No. 6, 06.2010, p. 679-688.

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review