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Detection of interference/jamming and spoofing in a DGPS-aided inertial system

机译:在DGPS辅助惯性系统中检测干扰/干扰和欺骗

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Previous research at the Air Force Institute of Technology (AFIT) has resulted in the design of a differential Global Positioning System (DGPS) aided INS-based (inertial navigation system) precision landing system (PLS) capable of meeting the FAA precision requirements for instrument landings. The susceptibility of DGPS transmissions to both intentional and nonintentional interference/jamming and spoofing must be addressed before DGPS may be safely used as a major component of such a critical navigational device. This research applies multiple model adaptive estimation (MMAE) techniques to the problem of detecting and identifying interference/jamming and spoofing in the DGPS signal. Such an MMAE is composed of a bank of parallel filters, each hypothesizing a different failure status, along with an evaluation of the current probability of each hypothesis being correct, to form a probability-weighted average state estimate as an output. For interference/jamming degradation represented as increased measurement noise variance, simulation results show that, because of the good failure detection and isolation (FDI) performance using MMAE, the blended navigation performance is essentially that of a single extended Kalman filter (EKF) artificially informed of the actual interference noise variance. However, a standard MMAE is completely unable to detect spoofing failures (modeled as a bias or ramp offset signal directly added to the measurement). This work describes a moving-bank pseudoresidual MMAE (PRMMAE) to detect and identify such spoofing. Using the PRMMAE algorithm, spoofing is very effectively detected and isolated; the resulting navigation performance is equivalent to that of an EKF operating in an environment without spoofing.
机译:空军技术学院(AFIT)的先前研究已导致设计出一种差分全球定位系统(DGPS)辅助的基于INS的(惯性导航系统)精密着陆系统(PLS),能够满足FAA对仪器的精度要求着陆。在DGPS可以安全地用作此类关键导航设备的主要组件之前,必须解决DGPS传输对有意和无意干扰/干扰和欺骗的敏感性。这项研究将多模型自适应估计(MMAE)技术应用于检测和识别DGPS信号中的干扰/干扰和欺骗问题。这种MMAE由一组并行滤波器组成,每个滤波器都假设一个不同的故障状态,并评估每个假设的当前概率是否正确,以形成概率加权平均状态估计值作为输出。对于表示为增加的测量噪声方差的干扰/干扰退化,仿真结果表明,由于使用MMAE具有良好的故障检测和隔离(FDI)性能,混合导航性能实质上是人工扩展的单个扩展卡尔曼滤波器(EKF)的性能。实际干扰噪声方差。但是,标准MMAE完全无法检测到欺骗失败(建模为直接添加到测量中的偏置或斜坡偏移信号)。这项工作描述了移动库伪残留的MMAE(PRMMAE),以检测和识别这种欺骗。使用PRMMAE算法,可以非常有效地检测和隔离欺骗。最终的导航性能等同于在没有欺骗的环境中运行的EKF。

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