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Designing Response Supply Chain Against Bioattacks

Author

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  • David Simchi-Levi

    (Department of Civil and Environmental Engineering, Institute for Data, Systems, and Society, and Operations Research Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

  • Nikolaos Trichakis

    (Operations Research Center and Sloan School of Management, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

  • Peter Yun Zhang

    (Institute for Data, Systems, and Society, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

Abstract

We study a prescriptive model for end-to-end design of a supply chain for medical countermeasures (MCMs) to defend against bioattacks. We model the defender’s MCMs inventory prepositioning and dispensing capacity installation decisions, attacker’s move, and defender’s adjustable shipment decisions so as to minimize inventory and life-loss costs subject to population survivability targets. We explicitly account for the strategic interaction between defender’s and attacker’s actions, assuming information transparency. We consider the affinely adjustable robust counterpart (AARC) to our problem, which enables us to deal with realistic networks comprising millions of nodes. We provide theoretical backing to the AARC performance by proving its optimality under certain conditions. We conduct a high-fidelity case study on the design of an MCMs supply chain with millions of nodes to guard against anthrax attacks in the United States. We calibrate our model using data from a wide variety of sources, including literature and field experiments. We produce policy insights that have been long sought after but elusive until now.

Suggested Citation

  • David Simchi-Levi & Nikolaos Trichakis & Peter Yun Zhang, 2019. "Designing Response Supply Chain Against Bioattacks," Operations Research, INFORMS, vol. 67(5), pages 1246-1268, September.
  • Handle: RePEc:inm:oropre:v:67:y:2019:i:5:p:1246-1268
    DOI: opre.2019.1862
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    References listed on IDEAS

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