DocumentCode :
792036
Title :
On the solution of the bilevel programming formulation of the terrorist threat problem
Author :
Arroyo, José M. ; Galiana, Francisco D.
Author_Institution :
Dept. de Ingenieria Electr.a, Univ. de CastillaLa Mancha, Ciudad Real, Spain
Volume :
20
Issue :
2
fYear :
2005
fDate :
5/1/2005 12:00:00 AM
Firstpage :
789
Lastpage :
797
Abstract :
This paper generalizes the "terrorist threat problem" first defined by Salmero´n, Wood, and Baldick by formulating it as a bilevel programming problem. Specifically, the bilevel model allows one to define different objective functions for the terrorist and the system operator as well as permitting the imposition of constraints on the outer optimization that are functions of both the inner and outer variables. This degree of flexibility is not possible through existing max-min models. The bilevel formulation is investigated through a problem in which the goal of the destructive agent is to minimize the number of power system components that must be destroyed in order to cause a loss of load greater than or equal to a specified level. This goal is tempered by the logical assumption that, following a deliberate outage, the system operator will implement all feasible corrective actions to minimize the level of system load shed. The resulting nonlinear mixed-integer bilevel programming formulation is transformed into an equivalent single-level mixed-integer linear program by replacing the inner optimization by its Karush-Kuhn-Tucker optimality conditions and converting a number of nonlinearities to linear equivalents using some well-known integer algebra results. The equivalent formulation has been tested on two case studies, including the 24-bus IEEE Reliability Test System, through the use of commercially available software.
Keywords :
integer programming; load shedding; minimisation; power system reliability; power system security; terrorism; IEEE reliability test system; integer algebra; linear equivalents; load shedding; max-min models; mixed-integer bilevel programming formulation; optimization; power system components; power system security; terrorist threat problem; Integer linear programming; Lagrangian functions; Linear programming; Load flow; Power generation; Power system modeling; Power transmission lines; Software testing; System testing; Upper bound; Bilevel programming; deliberate outages; load shedding; mixed-integer linear programming (MILP); power system security and vulnerability; terrorist threat;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2005.846198
Filename :
1425574
Link To Document :
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