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基于双谱分析的两阶段时空网络的无线电信号识别

Radio Signal Recognition Using Two-Stage Spatiotemporal Network with Bispectral Analysis.

作者信息

Bai Hongmei, Li Siming, Jia Yong, Xiao Bowen

机构信息

College of Mechanical and Electrical Engineering, Chengdu University of Technology, Chengdu 610059, China.

School of Computer and Cyber Security, Chengdu University of Technology, Chengdu 610059, China.

出版信息

Sensors (Basel). 2025 Sep 3;25(17):5449. doi: 10.3390/s25175449.

Abstract

With the rapid proliferation of unmanned aerial vehicles (UAVs), reliable identification based on radio frequency (RF) signals has become increasingly important for both civilian and security applications. This paper proposes a spatiotemporal feature extraction and classification framework based on bispectral analysis. Specifically, bispectral estimation is used to convert one-dimensional RF signals into two-dimensional bispectrum feature maps that capture higher-order spectral characteristics and nonlinear dependencies. Based on these characteristics, a two-stage network was constructed for spatiotemporal feature extraction and classification. The first stage utilizes a ResNet18 network to extract spatial structural features from individual bispectrum maps. The second stage employs an LSTM network to learn temporal dependencies across the sequence of bispectrum maps, capturing the continuity and evolution of signal characteristics over time. The experimental results on a public dataset of UAV RF signals show that this method improves recognition accuracy by 6.78% to 13.89% compared to other existing methods across five categories of UAVs.

摘要

随着无人机(UAV)的迅速普及,基于射频(RF)信号的可靠识别对于民用和安全应用都变得越来越重要。本文提出了一种基于双谱分析的时空特征提取与分类框架。具体而言,双谱估计用于将一维RF信号转换为二维双谱特征图,该图捕获高阶谱特征和非线性依赖性。基于这些特征,构建了一个用于时空特征提取和分类的两阶段网络。第一阶段利用ResNet18网络从各个双谱图中提取空间结构特征。第二阶段采用LSTM网络学习双谱图序列中的时间依赖性,捕捉信号特征随时间的连续性和演变。在一个无人机RF信号公共数据集上的实验结果表明,与其他现有方法相比,该方法在五类无人机上的识别准确率提高了6.78%至13.89%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a733/12430962/097702ec6155/sensors-25-05449-g001.jpg

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