高斯白噪声干扰对商用GNSS接收机影响的研究

M. Karaim, H. Elghamrawy, M. Tamazin, A. Noureldin
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引用次数: 2

摘要

基于卫星的导航和定位技术已经成为许多定位、导航和授时服务的重要工具。然而,随着全球导航卫星系统(GNSS)使用的增加,出现了一个重大挑战- GNSS信号干扰,这是一种故意的干扰形式。几乎所有使用GNSS接收器产生的服务的电子设备都容易受到干扰,其影响包括接收信号功率下降和接收器时钟漂移。干扰信号根据目标信号的带宽分为窄带信号和宽带信号。最近研究的一种常见的干扰类型是高斯白噪声干扰。一些研究研究了在各种干扰条件下这种信号干扰对GNSS接收机性能的影响。相反,本文研究高斯白噪声干扰对高灵敏度和标准GNSS商用接收机性能的影响。此外,还探讨了干扰情况下GPS-only接收机与GPS/GLONASS组合接收机的性能。本研究使用了NovAtel和UBlox的接收器,并使用思博伦SimGEN™和GSS6700多gnss模拟器创建了仿真场景。干扰信号是使用安捷伦干扰信号发生器(ISG)单元产生的。结果表明,接收机对干扰信号的响应存在差异。精密度稀释(DOP)和载波噪声比(C/N0)是评价过程的主要指标。结果表明,多星座接收机比单GPS接收机具有更高的抗信号干扰能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the effects of White Gaussian Noise jamming on commercial GNSS receivers
Satellite-based navigation and location technology has become an important tool for many positioning, navigation, and timing services. However, with increased use of Global Navigation Satellite Systems (GNSS) comes a major challenge — GNSS signal jamming, which is an intentional form of interference. Nearly all electronic equipment using services generated by GNSS receivers is susceptible to jamming, and its effects include degradation in received signal power and receiver clock drift. Jamming signals are categorized as narrowband and wideband signals according to the bandwidth of the target signal. One common type that has recently been researched is White Gaussian Noise (WGN) jamming. Several studies investigated the impact of such signal jamming on the performance of GNSS receivers under a variety of jamming conditions. This paper, on the contrary, investigates the effects of White Gaussian Noise jamming on the performance of both high-sensitivity and standard GNSS commercial receivers. Additionally, the performance of GPS-only receivers versus combined GPS/GLONASS receivers under jamming scenarios is explored. This study used receivers by NovAtel and UBlox, with simulation scenarios created using Spirent SimGEN™ with the GSS6700 Multi-GNSS Simulator. The jamming signals were generated using an Agilent interference signal generator (ISG) unit. The results show that the receivers responded differently to the jamming signals. Dilution of Precision (DOP) and the Carrier-to-Noise (C/N0) were the main measures used for the evaluation process. The results show that multi-constellation receivers attained higher resistance for signal jamming effects than GPS only receivers.
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