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Understanding realistic attacks on airborne collision avoidance systems

Author

Listed:
  • Matthew Smith

    (University of Oxford)

  • Martin Strohmeier

    (armasuisse Science + Technology)

  • Vincent Lenders

    (armasuisse Science + Technology)

  • Ivan Martinovic

    (University of Oxford)

Abstract

Airborne collision avoidance systems provide an onboard safety net should normal air traffic control procedures fail to keep aircraft separated. These systems are widely deployed and have been constantly refined over the past three decades, usually in response to near misses or mid-air collisions. Recent years have seen security research increasingly focus on aviation, identifying that key wireless links—some of which are used in collision avoidance—are vulnerable to attack. In this paper, we go one step further to understand whether an attacker can remotely trigger false collision avoidance alarms. Primarily considering the next-generation Airborne Collision Avoidance System X (ACAS X), we adopt a smodelling approach to extract attacker constraints from technical standards before simulating collision avoidance attacks against standardized ACAS X code. We find that in 44% of cases, an attacker can successfully trigger a collision avoidance alert which on average results in a 590 ft altitude deviation; when the aircraft is at lower altitudes, this success rate rises considerably to 79%. Furthermore, we show how our simulation approach can be used to help defend against attacks by identifying where attackers are most likely to be successful.

Suggested Citation

  • Matthew Smith & Martin Strohmeier & Vincent Lenders & Ivan Martinovic, 2022. "Understanding realistic attacks on airborne collision avoidance systems," Journal of Transportation Security, Springer, vol. 15(1), pages 87-118, June.
  • Handle: RePEc:spr:jtrsec:v:15:y:2022:i:1:d:10.1007_s12198-021-00238-2
    DOI: 10.1007/s12198-021-00238-2
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    References listed on IDEAS

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    1. McCallie, Donald & Butts, Jonathan & Mills, Robert, 2011. "Security analysis of the ADS-B implementation in the next generation air transportation system," International Journal of Critical Infrastructure Protection, Elsevier, vol. 4(2), pages 78-87.
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    Cited by:

    1. Mäurer, Nils & Guggemos, Tobias & Ewert, Thomas & Gräupl, Thomas & Schmitt, Corinna & Grundner-Culemann, Sophia, 2022. "Security in Digital Aeronautical Communications A Comprehensive Gap Analysis," International Journal of Critical Infrastructure Protection, Elsevier, vol. 38(C).

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