吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (8): 2240-2248.doi: 10.13229/j.cnki.jdxbgxb.20250031
• 通信与控制工程 • 上一篇
Xiao-yan NING(
),Yu-hao SHAO,Shuai YE,Zhen-duo WANG(
)
摘要:
为了提升正交线性调频分复用索引调制(OCDM-IM)系统的隐蔽性,提出了一种变时宽变索引映射方法,构建了VT-OCDM-IM系统。该系统通过同一组伪随机序列选取时宽和索引映射方法,打乱信号周期性,提高系统在检测信号周期性特征场景下的隐蔽性能。仿真和实验结果表明:在变时宽的同时改变系统的子载波数量,特定环境下拥有更高的可靠性,同时能够在保证系统传输速率的优势下提升系统隐蔽性能。
中图分类号:
| [1] | Lee H, Kim Y, Seol S, et al. Mimicking multiple whale whistles-based underwater covert communication[J]. IEEE Access, 2022, 10: 43934-43942. |
| [2] | 宁晓燕, 赵东旭, 朱云飞, 等. 基于离散分数阶傅里叶变换的二维跳频通信系统及性能分析[J]. 电子与信息学报, 2023, 45(2): 497-504. |
| Ning Xiao-yan, Zhao Dong-xu, Zhu Yun-fei, et al. Two-dimensional frequency hopping communication system and performance analysis based on discrete fractional Fourier transform[J]. Journal of Electronics & Information Technology, 2023, 45(2): 497-504. | |
| [3] | Nguyen T T, Nguyen H H, Barton R, et al. Efficient design of chirp spread spectrum modulation for low-power wide-area networks[J]. IEEE Internet of Things Journal, 2019, 6(6): 9503-9515. |
| [4] | Azim A W, Bazzi A, Shubair R, et al. Dual-mode chirp spread spectrum modulation[J]. IEEE Wireless Communications Letters, 2022, 11(9): 1995-1999. |
| [5] | Robson S, Haddad M. A chirp spread spectrum modulation scheme for robust power line communication[J]. IEEE Transactions on Power Delivery, 2022, 37(6): 5299-5309. |
| [6] | Bernard C, Bouvet P J, Pottier A, et al. Multiuser chirp spread spectrum transmission in an underwater acoustic channel applied to an AUV fleet[J]. Sensors, 2020, 20(5): 20051527. |
| [7] | 李建坡,李美霖,杨涛,等.大规模MIMO-OFDM系统中低复杂度维纳滤波信道估计算法[J].吉林大学学报: 工学版, 2022, 52(1): 211-218. |
| Li Jian-po, Li Mei-lin, Yang Tao, et al. Low-complexity Wiener filter channel estimation algorithm in massive MIMO-OFDM system[J]. Journal of Jilin University (Engineering and Technology Edition), 2022, 52(1): 211-218. | |
| [8] | Kim J H, Younis M, Moreira A, et al. A novel OFDM chirp waveform scheme for use of multiple transmitters in SAR[J]. IEEE Geoscience and Remote Sensing Letters, 2013, 10(3): 568-572. |
| [9] | Ouyang X, Zhao J. Orthogonal chirp division multiplexing[J]. IEEE Transactions on Communications, 2016, 64(9): 3946-3957. |
| [10] | Lv X, Wang J, Jiang Z, et al. A joint radar-communication system based on OCDM-OFDM scheme[C]∥2018 International Conference on Microwave and Millimeter Wave Technology, Chengdu, China, 2018: 1-3. |
| [11] | Zhu P, Xu X, Tu X, et al. Anti-multipath orthogonal chirp division multiplexing for underwater acoustic communication[J]. IEEE Access, 2020, 8: 13305-13314. |
| [12] | Zhu P, Yang G, Chen W, et al. Doppler-resistant orthogonal chirp division multiplexing with multiplex resampling for mobile underwater acoustic communication[J]. IEEE Access, 2022, 10: 55151-55163. |
| [13] | Bai Y, Bouvet P J. Orthogonal chirp division multiplexing for underwater acoustic communication[J]. Sensors, 2018, 18(11): 18113815. |
| [14] | Wang X, Jiang Z, Shen X H. Low complexity equalization of orthogonal chirp division multiplexing in doubly-selective channels[J]. Sensors, 2020, 20(11): 20113125. |
| [15] | Zhang R, Wang Y, Ma X. Channel estimation for OCDM transmissions with carrier frequency offset[J]. IEEE Wireless Communications Letters, 2022, 11(3): 483-487. |
| [16] | Haif H, Zegrar S E, Arslan H. Novel OCDM transceiver design for doubly-dispersive channels[J]. IEEE Transactions on Vehicular Technology, 2024, 73(8): 11237-11248. |
| [17] | Jia Z, Zhang R, Chen Z, et al. OCDM with index modulation for autonomous underwater vehicles communication[J]. IEEE Transactions on Intelligent Vehicles, 2025, 10(4): 2765-2780. |
| [18] | Başar E, Aygölü Ü, Panayirci E, et al. Orthogonal frequency division multiplexing with index modulation[J]. IEEE Transactions on Signal Processing, 2013, 61(22): 5536-5549. |
| [19] | Yu Y, Wang W, Ouyang X, et al. Discrete Fresnel transform spread OFDM for Coherent Optical Fiber Communication[J]. IEEE Photonics Technology Letters, 2018, 30(1): 91-94. |
| [20] | Yin Y. The CPDA Detector for the MIMO OCDM system[C]∥2021 IEEE 6th International Conference on Computer and Communication Systems, Chengdu, China, 2021: 1001-1004. |
| [21] | Omar M S, Ma X. Performance analysis of OCDM for wireless communications[J]. IEEE Transactions on Wireless Communications, 2021, 20(7): 4032-4043. |
| [22] | 崔伟亮, 江桦, 李剑强, 等. 改进的循环谱估计快速算法与性能分析[J]. 电子与信息学报, 2011, 33(7): 1594-1599. |
| Cui Wei-liang, Jiang Hua, Li Jian-qiang, et al. Improved fast cyclic spectral estimation algorithm and performance analysis[J]. Journal of Electronics & Information Technology, 2011,33(7):1594-1599. |
| [1] | 林琳,陈雨欣,佴威至. 基于手势帧序列提取的自适应实时手势分类算法[J]. 吉林大学学报(工学版), 2025, 55(9): 3042-3048. |
| [2] | 李建坡,刘琨,朱伟华. 基于链路质量优化的无线传感器网络数据传输算法[J]. 吉林大学学报(工学版), 2024, 54(9): 2668-2675. |
| [3] | 杨普,曲庆悦,申逸飞,刘毅. 能量效率最大化的非正交多址接入系统功率分配方法[J]. 吉林大学学报(工学版), 2024, 54(8): 2370-2377. |
| [4] | 周求湛,冀泽宇,王聪,荣静. 基于在线压缩重构的非侵入式电力负荷监测[J]. 吉林大学学报(工学版), 2024, 54(6): 1796-1806. |
| [5] | 周求湛,冀泽宇,王聪,胡继康,李明明,陈禹竺,周险峰,刘萍萍. 基于猫群算法的震动感知周界安防系统[J]. 吉林大学学报(工学版), 2023, 53(4): 1187-1199. |
| [6] | 孙洪亮,沈伟达,陈玲玲. 时延QoS约束下的混合业务带宽补偿算法[J]. 吉林大学学报(工学版), 2022, 52(8): 1912-1917. |
| [7] | 陈建,于帆,林琳,孙铭会. 基于多阵列合成孔径的局部超声阵列聚焦方法[J]. 吉林大学学报(工学版), 2022, 52(10): 2447-2455. |
| [8] | 侯春萍,赵春月,王致芃,田海瑞. 基于有效异常样本构造的视频异常检测算法[J]. 吉林大学学报(工学版), 2021, 51(5): 1823-1829. |
| [9] | 王义君,张有旭,缪瑞新,豆佳敏. 5G中基于系统中断概率的D2D资源分配算法[J]. 吉林大学学报(工学版), 2021, 51(1): 331-339. |
| [10] | 胡钊政,李招康,陶倩文. 基于分布式二维激光测距仪的室内行人检测与跟踪[J]. 吉林大学学报(工学版), 2020, 50(2): 719-729. |
| [11] | 赵鹏,蒋宇中,陈斌,李春腾,张杨勇. 基于局部方差域自适应Blanking的超低频信道噪声抑制方法[J]. 吉林大学学报(工学版), 2019, 49(5): 1696-1705. |
|
||