Spoofing Detection using Decomposition of the Complex Cross Ambiguity Function with Measurement Correlation

Sahil Ahmed, S. Khanafseh, B. Pervan
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引用次数: 1

Abstract

In this paper, we describe, implement, and validate the decomposition of the Complex Cross Ambiguity Functions (CCAF) of spoofed Global Navigation Satellite System (GNSS) signals into their constitutive components. We advance prior work in [1] and [2] by specifically accounting for correlation of thermal noise across the code delay and Doppler measurement space and by increasing the pre-detection integration time to reduce its overall impact. We also characterize the CCAF distortion by code cross-correlation and thermal noise. The method is applicable to spoofing scenarios that can lead to Hazardous Misleading information (HMI) and are difficult to detect by other means. It can identify spoofing in the presence of multipath and when the spoofing signal is power matched and offsets in code delay and Doppler frequency are relatively close to the true signal. Spoofing can be identified at an early stage within the receiver and even applicable for dynamic users.
基于测量相关性的复交叉模糊函数分解的欺骗检测
在本文中,我们描述、实现并验证了欺骗全球导航卫星系统(GNSS)信号的复杂交叉模糊函数(CCAF)分解为其本构分量的方法。我们在[1]和[2]中推进了先前的工作,具体考虑了热噪声在码延迟和多普勒测量空间中的相关性,并通过增加预检测集成时间来减少其总体影响。我们还利用码互关和热噪声来表征CCAF失真。该方法适用于可能导致危险误导信息(HMI)且其他方法难以检测的欺骗场景。当欺骗信号功率匹配,码延迟偏移量和多普勒频率偏移量相对接近真实信号时,可以识别多径存在的欺骗信号。欺骗可以在接收方内部的早期阶段识别,甚至适用于动态用户。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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