基于时钟稳定性分析的接收机自主信号认证

P. Hwang, G. McGraw
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引用次数: 15

摘要

全球导航卫星系统(GNSS)接收机的欺骗性干扰,包括故意欺骗GNSS信号,日益受到关注。为了确保位置、导航和时间(PNT)的完整性,需要从真实GNSS信号中检测和隔离欺骗性干扰信号,这对于未加密的开放服务GNSS用户来说是一个特别关注的问题。提出了一种接收机自主信号认证(RASA)方法,该方法基于检测由于威胁发射机到移动目标接收机的传播延迟变化而产生的欺骗性干扰信号伪影的存在。这个伪影在错误的位置解中不容易观察到,但可以在估计的接收器时钟状态中观察到。本文描述了在短时间内分析接收机时钟稳定性的方法,以确定由于欺骗性干扰源和GNSS接收机之间的相对运动而产生的动态伪像的存在。本文讨论了与声明信号为“真实”有关的统计决策测试,并给出了检测性能的仿真模型的结果以及验证所描述方法的实时数据表征。提议的RASA功能的优点是它可以在接收器软件中实现,不需要与其他用户接收器协调或需要额外的硬件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Receiver Autonomous Signal Authentication (RASA) based on clock stability analysis
Deceptive interference of Global Navigation Satellite System (GNSS) receivers, including deliberate spoofing of GNSS signals, is an increasing concern. Detection and isolation of deceptive interference signals from true GNSS signals is required to assure Position, Navigation, and Time (PNT) integrity and is a particular concern for unencrypted, Open Service GNSS users. A Receiver Autonomous Signal Authentication (RASA) approach is presented which is based on detecting the presence of a deceptive interference signal artifact due to the variation in the propagation delay from the threat transmitter to a moving target receiver. This artifact is not readily observable in the erroneous position solution, but can be observed in the estimated receiver clock state. This paper describes methods to analyze the stability of receiver clock over a short duration to determine the presence of dynamic artifacts that occur due to relative motion between the deceptive interference source and the GNSS receiver. The paper presents a discussion of the statistical decision testing involved with declaring the signals as “authentic” and presents results from a simulation model on the detection performance as well as live data characterization to validate the method described. The proposed RASA capability has the advantages that it can be implemented in receiver software and does not require coordination with other user receivers or require additional hardware.
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