2023
DOI: 10.1287/ijoc.2022.1257
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The Value of Randomized Strategies in Distributionally Robust Risk-Averse Network Interdiction Problems

Abstract: Conditional value at risk (CVaR) is widely used to account for the preferences of a risk-averse agent in extreme loss scenarios. To study the effectiveness of randomization in interdiction problems with an interdictor that is both risk- and ambiguity-averse, we introduce a distributionally robust maximum flow network interdiction problem in which the interdictor randomizes over the feasible interdiction plans in order to minimize the worst case CVaR of the maximum flow with respect to both the unknown distribu… Show more

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Cited by 3 publications
(1 citation statement)
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“…They presented a stochastic maximal flow interdiction and fortification problem and proposed a robust stochastic approximation method to solve it. Recently, Sadana and Delage [34] studied a distributionally risk‐averse (robust) maximum flow interdiction problem where the leader's decision is to determine a probability distribution defined over a finite set of all feasible interdiction plans with the objective of minimizing the worst‐case CVaR of the flow. They utilized the distributionally robust CVaR measure to handle uncertain capacities where the ambiguity set is a budgeted uncertainty set (introduced in [9]).…”
Section: Introductionmentioning
confidence: 99%
“…They presented a stochastic maximal flow interdiction and fortification problem and proposed a robust stochastic approximation method to solve it. Recently, Sadana and Delage [34] studied a distributionally risk‐averse (robust) maximum flow interdiction problem where the leader's decision is to determine a probability distribution defined over a finite set of all feasible interdiction plans with the objective of minimizing the worst‐case CVaR of the flow. They utilized the distributionally robust CVaR measure to handle uncertain capacities where the ambiguity set is a budgeted uncertainty set (introduced in [9]).…”
Section: Introductionmentioning
confidence: 99%