A deep learning GNSS spoofing and jamming detection method with dual-frequency C/N0 heatmap

被引:0
|
作者
Wang, Xiaoyan [1 ]
Yang, Jingjing [1 ]
Huang, Ming [1 ]
机构
[1] Zhaotong Univ, Zhaotong, Yunnan, Peoples R China
基金
中国国家自然科学基金;
关键词
GNSS monitoring; deep learning; interference detection; spoofing and jamming; C/N-0; heatmap; NAVIGATION SATELLITE SYSTEM; INTERFERENCE; THREATS;
D O I
10.1088/1361-6501/ad7627
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The global navigation satellite system (GNSS) is vulnerable to interference due to the open signal structure and low signal strength, posing a significant threat to the billions of terminals worldwide that rely on GNSS receivers for precise positioning, navigation, and timing services. In this paper, we propose a cloud-edge framwork for GNSS spoofing and jamming monitoring, comprising the data acquisition module, GNSS monitoring module, detecting and reporting module. In this framwork, we design a deep learning (DL) method for detecting GNSS interference through Dual-frequency Carrier-to-Noise density ratio (C/N-0) heatmaps (DD-C/N-0). This method involves extracting and correlating features from C/N-0 heatmaps of visible navigation satellites operating in the GPS L1 and L2 frequency bands, allowing the identification of anomalous patterns. A U-BLOX receiver was utilized to capture the GNSS satellite signals, while commercial jammers and Software-defined radio (SDR) HackRF One kits were employed to simulate the interference sources. Experimental results demonstrate that the proposed method achieves significantly higher performance, with an accuracy of 99% and 98% on the public dataset and real-time testing data, compared to unsupervised, semi-supervised, and supervised detectors that rely solely on single-channel data (L1 frequency band). Integrated with the DD-C/N-0 method, the online GNSS monitoring system will be improved and deployed to automate spoofing and jamming detection tasks in the next step.
引用
收藏
页数:18
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