无人机低地轨道卫星信号定位系统中的抗干扰算法研究

Drones Pub Date : 2024-04-20 DOI:10.3390/drones8040164
Lihao Yao, Honglei Qin, Boyun Gu, Guangting Shi, Hai Sha, Mengli Wang, Deyong Xian, Feiqiang Chen, Zukun Lu
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引用次数: 0

摘要

低地轨道(LEO)卫星机会信号(SOP)定位技术已逐渐成熟,可满足日常场景中无人机(UAV)定位的精度要求。定位终端微型化技术的进步也使该技术应用于无人机定位成为无人机发展的关键。然而,在日益复杂的电磁环境中,低地轨道卫星 SOP 定位中的无人机定位性能仍存在因无意或恶意干扰而下降的重大风险。此外,国内外学者对低地轨道卫星 SOP 定位技术的抗干扰能力缺乏深入研究。由于低地轨道卫星与基于中地轨道(MEO)或静止地球轨道(GEO)卫星的全球导航卫星系统(GNSS)信号在下行链路信号特性上存在显著差异,传统卫星导航系统的抗干扰研究成果无法直接应用。本研究针对低地轨道卫星群信号带宽窄、信噪比(SNR)高的特点。我们提出了一种基于信号消除的连续迭代(SCCI)算法,该算法可显著减少模型拟合过程中的误差。此外,我们还设计了一个自适应可变收敛因子,以同时平衡迭代过程中的收敛速度和稳态误差。与传统算法相比,仿真和实验结果表明,所提出的算法提高了窄带宽和高功率条件下干扰阈值设置的有效性。在低地球轨道卫星干扰场景下,该算法显著提高了频域抗干扰性能,在无人机定位方面具有很高的应用价值。
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A Study on Anti-Jamming Algorithms in Low-Earth-Orbit Satellite Signal-of-Opportunity Positioning Systems for Unmanned Aerial Vehicles
Low-Earth-Orbit (LEO) satellite Signal-of-Opportunity (SOP) positioning technology has gradually matured to meet the accuracy requirements for unmanned aerial vehicle (UAV) positioning in daily scenarios. Advancements in miniaturization technology for positioning terminals have also made this technology’s application to UAV positioning crucial for UAV development. However, in the increasingly complex electromagnetic environment, there remains a significant risk of degradation in positioning performance for UAVs in LEO satellite SOP positioning due to unintentional or malicious jamming. Furthermore, there is a lack of in-depth research from scholars both domestically and internationally on the anti-jamming capabilities of LEO satellite SOP positioning technology. Due to significant differences in the downlink signal characteristics between LEO satellites and Global Navigation Satellite System (GNSS) signals based on Medium Earth Orbit (MEO) or Geostationary Earth Orbit (GEO) satellites, the anti-jamming research results of traditional satellite navigation systems cannot be directly applied. This study addresses the narrow bandwidth and high signal-to-noise ratio (SNR) characteristics of signals from LEO satellite constellations. We propose a Consecutive Iteration based on Signal Cancellation (SCCI) algorithm, which significantly reduces errors during the model fitting process. Additionally, an adaptive variable convergence factor was designed to simultaneously balance convergence speed and steady-state error during the iteration process. Compared to traditional algorithms, simulation and experimental results demonstrated that the proposed algorithm enhances the effectiveness of jamming threshold settings under narrow bandwidth and high-power conditions. In the context of LEO satellite jamming scenarios, it improves the frequency-domain anti-jamming performance significantly and holds high application value for drone positioning.
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