• DocumentCode
    3608000
  • Title

    Quantum key distribution: examination of the decoy state protocol

  • Author

    Mailloux, Logan O. ; Grimaila, Michael R. ; Colombi, John M. ; Hodson, Douglas D. ; Engle, Ryan D. ; McLaughlin, Colin V. ; Baumgartner, Gerald

  • Author_Institution
    U.S. Air Force Inst. of Technol., Wright-Patterson AFB, OH, USA
  • Volume
    53
  • Issue
    10
  • fYear
    2015
  • fDate
    10/1/2015 12:00:00 AM
  • Firstpage
    24
  • Lastpage
    31
  • Abstract
    Quantum key distribution (QKD) is an innovative technology that exploits the laws of quantum mechanics to generate and distribute a shared cryptographic key for secure communications. The unique nature of QKD ensures that eavesdropping on quantum communications necessarily introduces detectable errors which is desirable for high-security environments. QKD systems have been demonstrated in both freespace and optical fiber configurations, gaining global interest from national laboratories, commercial entities, and the U.S. Department of Defense. However, QKD is a nascent technology where realized systems are constructed from non-ideal components, which can significantly impact system performance and security. In this article, we describe QKD technology as part of a secure communications solution and identify vulnerabilities associated with practical network architectures. In particular, we examine the performance of decoy state enabled QKD systems against a modeled photon number splitting attack and suggest an improvement to the decoy state protocol security condition that does not assume a priori knowledge of the QKD channel efficiency.
  • Keywords
    cryptographic protocols; quantum cryptography; QKD channel; U.S. Department of Defense; cryptographic key; decoy state protocol security condition; innovative technology; optical fiber configurations; photon number; quantum communications; quantum key distribution; quantum mechanics; secure communications; Communication systems; Cryptography; Disruption tolerant networking; Military communication; Optical pulses; Photonics; Propagation losses; Protocols; Quantum mechanics; System performance; US Department of Defense;
  • fLanguage
    English
  • Journal_Title
    Communications Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    0163-6804
  • Type

    jour

  • DOI
    10.1109/MCOM.2015.7295459
  • Filename
    7295459