Netinfo Security ›› 2026, Vol. 26 ›› Issue (6): 899-912.doi: 10.3969/j.issn.1671-1122.2026.06.005
Previous Articles Next Articles
ZHOU Xueguang, ZHAO Yue, CHEN Lu(
), MAO Yihuan, YAN Meishuang
Received:2025-09-11
Online:2026-06-10
Published:2026-07-27
Contact:
CHEN Lu
E-mail:ieucl@163.com
CLC Number:
ZHOU Xueguang, ZHAO Yue, CHEN Lu, MAO Yihuan, YAN Meishuang. Research on Open-Set Radio Frequency Fingerprint Identification Based on Transfer Learning and Improved OpenMax Algorithm[J]. Netinfo Security, 2026, 26(6): 899-912.
Add to citation manager EndNote|Ris|BibTeX
URL: http://netinfo-security.org/EN/10.3969/j.issn.1671-1122.2026.06.005
| 网络层 | 卷积核大小/通道 | 步长 | 输出 |
|---|---|---|---|
| 输入 | — | — | 224×224×1 |
| Conv1 | 7×7,64 | 2 | 112×112×64 |
| Maxpool | 3×3,64 | 2 | 56×56×64 |
| 残差层1 | | 1 | 56×56×64 |
| 残差层2 | | 2 | 28×28×128 |
| 残差层3 | | 2 | 14×14×256 |
| 残差层4 | | 2 | 7×7×512 |
| Avgpool | 7×7 | 512 | 1×1×512 |
| 全连接层 | 1×1 | 512 | 分类任务类别数 |
| 方法 | | | ||||
|---|---|---|---|---|---|---|
| 准确率 | F1分数 | 召回率 | 准确率 | F1分数 | 召回率 | |
| ARPL | 96.90% | 94.83% | 96.77% | 95.87% | 94.83% | 96.29% |
| MLS | 96.50% | 94.17% | 96.35% | 95.33% | 94.17% | 95.82% |
| 网格 搜索 | 99.75% | 99.58% | 99.75% | 99.67% | 99.58% | 99.71% |
| 本文 方法 | 99.80% | 99.80% | 99.80% | 99.73% | 99.77% | 99.77% |
| 方法 | | | ||||
| 准确率 | F1分数 | 召回率 | 准确率 | F1分数 | 召回率 | |
| ARPL | 94.83% | 94.83% | 95.03% | 94.36% | 94.83% | 93.32% |
| MLS | 94.17% | 94.17% | 94.43% | 93.64% | 94.17% | 92.59% |
| 网格 搜索 | 99.58% | 99.58% | 99.58% | 99.55% | 99.58% | 99.38% |
| 本文 方法 | 99.83% | 99.83% | 99.83% | 99.82% | 99.83% | 99.75% |
| [1] | ZHANG Junqing, SHEN Guanxiong, SAAD W, et al. Radio Frequency Fingerprint Identification for Device Authentication in the Internet of Things[J]. IEEE Communications Magazine, 2023, 61(10): 110-115. |
| [2] | WU Chaopeng, CHEN Shiwen, SUN Gangyin, et al. Open Set RF Fingerprint Identification for Wireless Communication Devices[J]. IEEE Wireless Communications Letters, 2025, 14(3): 776-780. |
| [3] | LIU Jue, CHENG Kaixin, YANG Weiwei. Research on Physical Layer Security Technologies for Smart Eavesdropper Attack[J]. Netinfo Security, 2023, 23(2): 45-53. |
| 刘珏, 程凯欣, 杨炜伟. 智能窃听攻击下的物理层安全技术研究[J]. 信息网络安全, 2023, 23(2):45-53. | |
| [4] | HALL J, BARBEAU M, KRANAKIS E. Detection of Transient in Radio Frequency Fingerprinting Using Signal Phase[J]. Wireless and Optical Communications, 2003, 1(1): 13-18. |
| [5] | MOHAMED I S, DALVEREN Y, KARA A. Performance Assessment of Transient Signal Detection Methods and Superiority of Energy Criterion (EC) Method[J]. IEEE Access, 2020, 8: 115613-115620. |
| [6] | ZHUO Fei, HUANG Yuanling, CHEN Jian. Specific Emitter Identification Based on Linear Polynomial Fitting of the Energy Envelope[C]// IEEE. 2016 6th International Conference on Electronics Information and Emergency Communication (ICEIEC). New York: IEEE, 2016: 278-281. |
| [7] | SHI Zhiyuan, LIU Man, HUANG Lianfen. Transient-Based Identification of 802.11b Wireless Device[C]// IEEE. 2011 International Conference on Wireless Communications and Signal Processing (WCSP). New York: IEEE, 2011: 1-5. |
| [8] | LUO Zhenyu, CAO Yunhe, YEO T S, et al. Few-Shot Radar Jamming Recognition Network via Time-Frequency Self-Attention and Global Knowledge Distillation[J]. IEEE Transactions on Geoscience and Remote Sensing, 2023, 61: 1-12. |
| [9] | ZHEN Pan, ZHANG Bangning, CHEN Zhibo, et al. Spectrum Sensing Method Based on Wavelet Transform and Residual Network[J]. IEEE Wireless Communications Letters, 2022, 11(12): 2517-2521. |
| [10] | CAI Zhenxin, WANG Yu, GUI Guan, et al. Toward Robust Radio Frequency Fingerprint Identification via Adaptive Semantic Augmentation[J]. IEEE Transactions on Information Forensics and Security, 2025, 20: 1037-1048. |
| [11] | LI Jianfeng, HUANG Dingkun, YAN Xiaopeng, et al. Low SNR FM Signal Preprocessing Method Based on Low-Order Cyclic Statistics and WVD Distribution[C]// IEEE. 2023 2nd International Conference on Robotics, Artificial Intelligence and Intelligent Control (RAIIC). New York: IEEE, 2023: 258-262. |
| [12] | XIAO Yihan, WANG Boyu, YU Xiangzhen, et al. Radar Emitter Identification Based on Dual Radio Frequency Fingerprint Convolutional Neural Network and Feature Fusion[J]. Journal of Electronics & Information Technology, 2024, 46(8): 3238-3245. |
| 肖易寒, 王博煜, 于祥祯, 等. 基于双路射频指纹卷积神经网络与特征融合的雷达辐射源个体识别[J]. 电子与信息学报, 2024, 46(8):3238-3245. | |
| [13] | MA Jialong, GAO Zhenzhen, MIAO Weijian, et al. Robust RF Fingerprint Identification Scheme Based on Multi-Feature Fusion[C]// IEEE. 2024 IEEE/CIC International Conference on Communications in China (ICCC). New York: IEEE, 2024: 1976-1981. |
| [14] | WANG Min, PENG Linning, XIE Lingnan, et al. Design of Noise Robust Open-Set Radio Frequency Fingerprint Identification Method[C]// IEEE. IEEE INFOCOM 2024-IEEE Conference on Computer Communications Workshops (INFOCOM WKSHPS). New York: IEEE, 2024: 1-6. |
| [15] | SONG Yubo, GENG Yijin, LI Guyue, et al. Identification of LoRa Device Based on Differential Constellation Trace Figure[J]. Netinfo Security, 2021, 21(1): 41-48. |
| 宋宇波, 耿益瑾, 李古月, 等. 基于差分星座轨迹图的LoRa设备识别方法[J]. 信息网络安全, 2021, 21(1): 41-48. | |
| [16] | ZHANG Haotian, ZHAO Lei, JIANG Yuan. Triplet Network and Unsupervised-Clustering-Based Zero-Shot Radio Frequency Fingerprint Identification with Extremely Small Sample Size[J]. IEEE Internet of Things Journal, 2024, 11(8): 14416-14434. |
| [17] | ZHANG Limin, TAN Kaiwen, YAN Wenjun, et al. Specific Emitter Identification Based on Continuous Learning and Joint Feature Extraction[J]. Journal of Electronics & Information Technology, 2023, 45(1): 308-316. |
| 张立民, 谭凯文, 闫文君, 等. 基于持续学习和联合特征提取的特定辐射源识别[J]. 电子与信息学报, 2023, 45(1): 308-316. | |
| [18] | SHEN Guanxiong, ZHANG Junqing, MARSHALL A, et al. Radio Frequency Fingerprint Identification for LoRa Using Deep Learning[J]. IEEE Journal on Selected Areas in Communications, 2021, 39(8): 2604-2616. |
| [19] | LU Qian, YANG Zaikai, ZHANG Hanlin, et al. MRFE: A Deep-Learning-Based Multidimensional Radio Frequency Fingerprinting Enhancement Approach for IoT Device Identification[J]. IEEE Internet of Things Journal, 2024, 11(18): 30442-30454. |
| [20] | JIANG Qi, SHA Jin. Radio Frequency Fingerprint Identification Using Conditional Generative Adversarial Network for SAT-AIS[J]. IEEE Transactions on Aerospace and Electronic Systems, 2025, 61(1): 593-602. |
| [21] | ZENG Yuan, GONG Yi, LIU Jiawei, et al. Multi-Channel Attentive Feature Fusion for Radio Frequency Fingerprinting[J]. IEEE Transactions on Wireless Communications, 2024, 23(5): 4243-4254. |
| [22] | GRITSENKO A, WANG Zifeng, JIAN Tong, et al. Finding a ‘New’ Needle in the Haystack: Unseen Radio Detection in Large Populations Using Deep Learning[C]// IEEE. 2019 IEEE International Symposium on Dynamic Spectrum Access Networks (DySPAN). New York: IEEE, 2019: 1-10. |
| [23] | HANNA S, KARUNARATNE S, CABRIC D. Open Set Wireless Transmitter Authorization: Deep Learning Approaches and Dataset Considerations[J]. IEEE Transactions on Cognitive Communications and Networking, 2021, 7(1): 59-72. |
| [24] | YANG Tianwen, ZHAO Jianing, WANG Xin, et al. Deep Learning Based RFF Recognition with Differential Constellation Trace Figure towards Closed and Open Set[C]// IEEE. 2022 IEEE/CIC International Conference on Communications in China (ICCC). New York: IEEE, 2022: 908-913. |
| [25] | SHEN Guanxiong, ZHANG Junqing, MARSHALL A, et al. Towards Scalable and Channel-Robust Radio Frequency Fingerprint Identification for LoRa[J]. IEEE Transactions on Information Forensics and Security, 2022, 17: 774-787. |
| [26] | SHEN Guanxiong, ZHANG Junqing, MARSHALL A. Deep Learning-Powered Radio Frequency Fingerprint Identification: Methodology and Case Study[J]. IEEE Communications Magazine, 2023, 61(9): 170-176. |
| [27] | WANG Xiang, WANG Qunke, FANG Lanting, et al. Radio Frequency Fingerprint Authentication Based on Feature Fusion and Contrastive Learning[EB/OL]. (2024-12-01)[2025-08-11]. https://dl.acm.org/doi/10.1016/j.eswa.2024.124537. |
| [28] | BENDALE A, BOULT T E. Towards Open Set Deep Networks[C]// IEEE. 2016 IEEE Conference on Computer Vision and Pattern Recognition (CVPR). New York: IEEE, 2016: 1563-1572. |
| [29] | HANNA S, KARUNARATNE S, CABRIC D. WiSig: A Large-Scale WiFi Signal Dataset for Receiver and Channel Agnostic RF Fingerprinting[J]. IEEE Access, 2022, 10: 22808-22818. |
| [30] | HE Kaiming, ZHANG Xiangyu, REN Shaoqing, et al. Deep Residual Learning for Image Recognition[C]// IEEE. 2016 IEEE Conference on Computer Vision and Pattern Recognition (CVPR). New York: IEEE, 2016: 770-778. |
| [31] | HU Hong. Research on Open Set Recognition Algorithm for Typical Signal Modulation[D]. Chengdu: University of Electronic Science and Technology of China, 2024. |
| 胡鸿. 典型信号调制方式开集识别算法研究[D]. 成都: 电子科技大学, 2024. | |
| [32] | CHEN Guangyao, PENG Peixi, WANG Xiangqian, et al. Adversarial Reciprocal Points Learning for Open Set Recognition[J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 2022, 44(11): 8065-8081. |
| [33] | VAZE S, HAN Kai, VEDALDI A, et al. Open-Set Recognition: A Good Closed-Set Classifier is All You Need[EB/OL]. (2022-01-29)[2025-08-11]. https://openreview.net/forum?id=5hLP5JY9S2d |
| [1] | YI Wenzhe, XU Xiaoyang, SHI Lei, ZHUANG Yong, WANG Juan. Model Inversion Defense Method Based on Knowledge Transfer and Freezing [J]. Netinfo Security, 2026, 26(4): 566-578. |
| [2] | YE Huanrong, LI Muyuan, JIANG Bo. Research on DGA Malicious Domain Name Detection Method Based on Transfer Learning and Threat Intelligence [J]. Netinfo Security, 2023, 23(10): 8-15. |
| [3] | XU Shuo, ZHANG Rui, XIA Hui. Privacy-preserving Strategies for Federated Learning Based on Data Attribute Modification [J]. Netinfo Security, 2022, 22(1): 55-63. |
| [4] | GUO Chun, CHEN Changqing, SHEN Guowei, JIANG Chaohui. A Ransomware Classification Method Based on Visualization [J]. Netinfo Security, 2020, 20(4): 31-39. |
| [5] | Wei WANG, Xudong SHEN. Research on Transfer Time Series Anomaly Detection Algorithm Based on Instance [J]. Netinfo Security, 2019, 19(3): 11-18. |
| [6] | Yuan-yuan YANG, Zhen LU, Jian GU. Formal Analysis of Tracking Attack for RFID Security Protocols [J]. Netinfo Security, 2015, 15(9): 25-28. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||