• DocumentCode
    53570
  • Title

    A Modeling Framework for Studying Quantum Key Distribution System Implementation Nonidealities

  • Author

    Mailloux, Logan O. ; Morris, Jeffrey D. ; Grimaila, Michael R. ; Hodson, Douglas D. ; Jacques, David R. ; Colombi, John M. ; Mclaughlin, Colin V. ; Holes, Jennifer A.

  • Author_Institution
    Air Force Inst. of Technol., Wright-Patterson AFB, OH, USA
  • Volume
    3
  • fYear
    2015
  • fDate
    2015
  • Firstpage
    110
  • Lastpage
    130
  • Abstract
    Quantum key distribution (QKD) is an innovative technology that exploits the laws of quantum mechanics to generate and distribute unconditionally secure shared key for use in cryptographic applications. However, QKD is a relatively nascent technology where real-world system implementations differ significantly from their ideal theoretical representations. In this paper, we introduce a modeling framework built upon the OMNeT++ discrete event simulation framework to study the impact of implementation nonidealities on QKD system performance and security. Specifically, we demonstrate the capability to study the device imperfections and practical engineering limitations through the modeling and simulation of a polarization-based, prepare and measure BB84 QKD reference architecture. The reference architecture allows users to model and study complex interactions between physical phenomenon and system-level behaviors representative of real-world design and implementation tradeoffs. Our results demonstrate the flexibility of the framework to simulate and evaluate current, future, and notional QKD protocols and components.
  • Keywords
    cryptographic protocols; discrete event simulation; quantum cryptography; telecommunication security; BB84 QKD reference architecture; OMNeT++ discrete event simulation framework; QKD protocols; QKD system performance; QKD system security; implementation nonideality; polarization-based simulation; quantum key distribution system; quantum mechanics; system-level behaviors; Cryptography; Current measurement; Discrete event simulation; Modeling; Network security; Performance evaluation; Protocols; Quantum mechanics; Simulation; System performance; Modeling & Simulation; Quantum Key Distribution; Quantum key distribution; System Performance; System Security; modeling & simulation; system performance; system security;
  • fLanguage
    English
  • Journal_Title
    Access, IEEE
  • Publisher
    ieee
  • ISSN
    2169-3536
  • Type

    jour

  • DOI
    10.1109/ACCESS.2015.2399101
  • Filename
    7031852