• Photonics Research
  • Vol. 9, Issue 6, 1124 (2021)
Xianglei Yan1、2, Xihua Zou1、2、*, Peixuan Li1、2, Wei Pan1、2, and Lianshan Yan1、2
Author Affiliations
  • 1Center for Information Photonics and Communications, School of Information Science and Technology, Southwest Jiaotong University, Chengdu 611756, China
  • 2International Cooperation Research Center of China: Communications & Sensor Networks for Modern Transportation, Chengdu 611756, China
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    DOI: 10.1364/PRJ.419605 Cite this Article Set citation alerts
    Xianglei Yan, Xihua Zou, Peixuan Li, Wei Pan, Lianshan Yan. Covert wireless communication using massive optical comb channels for deep denoising[J]. Photonics Research, 2021, 9(6): 1124 Copy Citation Text show less
    References

    [1] A. Goldsmith. Wireless Communications(2005).

    [2] S. Yan, X. Zhou, J. Hu, S. V. Hanly. Low probability of detection communication: opportunities and challenges. IEEE Wireless Commun., 26, 19-25(2019).

    [3] Z. Liu, J. Liu, Y. Zeng, J. Ma. Covert wireless communication in IOT network: from AWGN channel to THz band. IEEE Internet Things, 7, 3378-3388(2020).

    [4] M. K. Simon, J. K. Omura, R. A. Scholtz, B. K. Levitt. Spread Spectrum Communications Handbook(1994).

    [5] B. A. Bash, D. Goeckel, D. Towsley, S. Guha. Hiding information in noise: fundamental limits of covert wireless communication. IEEE Commun. Mag., 53, 26-31(2015).

    [6] R. Soltani, D. Goeckel, D. Towsley, B. A. Bash, S. Guha. Covert wireless communication with artificial noise generation. IEEE Trans. Wireless Commun., 17, 7252-7267(2018).

    [7] Z. Liu, J. Liu, Y. Zeng, J. Ma. Covert wireless communications in IOT systems: hiding information in interference. IEEE Wireless Commun., 25, 46-52(2018).

    [8] T. Fortier, E. Baumann. 20 years of developments in optical frequency comb technology and applications. Commun. Phys., 2, 153(2019).

    [9] S. A. Diddams, K. Vahala, T. Udem. Optical frequency combs: coherently uniting the electromagnetic spectrum. Science, 369, eaay3676(2020).

    [10] M. Giunta, M. Fischer, W. Hänsel, T. Steinmetz, M. Lessing, S. Holzberger, C. Cleff, T. W. Hänsch, M. Mei, R. Holzwarth. 20 years and 20 decimal digits: a journey with optical frequency combs. IEEE Photon. Technol. Lett., 31, 1898-1901(2019).

    [11] T. Herr, V. Brasch, J. D. Jost, C. Y. Wang, N. M. Kondratiev, M. L. Gorodetsky, T. J. Kippenberg. Temporal solitons in optical microresonators. Nat. Photonics, 8, 145-152(2014).

    [12] V. Brasch, M. Geiselmann, T. Herr, G. Lihachev, M. H. Pfeiffer, M. L. Gorodetsky, T. J. Kippenberg. Photonic chip–based optical frequency comb using soliton Cherenkov radiation. Science, 351, 357-360(2016).

    [13] A. Parriaux, K. Hammani, G. Millot. Electro-optic frequency combs. Adv. Opt. Photon., 12, 223-287(2020).

    [14] M. Zhang, B. Buscaino, C. Wang, A. Shams-Ansari, C. Reimer, R. Zhu, J. M. Kahn, M. Lončar. Broadband electro-optic frequency comb generation in a lithium niobate microring resonator. Nature, 568, 373-377(2019).

    [15] A. Rueda, F. Sedlmeir, M. Kumari, G. Leuchs, H. G. Schwefel. Resonant electro-optic frequency comb. Nature, 568, 378-381(2019).

    [16] J. Ma, X. Jiang, M. Xiao. Kerr frequency combs in large-size, ultra-high-Q toroid microcavities with low repetition rates [invited]. Photon. Res., 5, B54-B58(2017).

    [17] X. Yan, X. Zou, W. Pan, L. Yan, J. Azaña. Fully digital programmable optical frequency comb generation and application. Opt. lett., 43, 283-286(2018).

    [18] A. L. Gaeta, M. Lipson, T. J. Kippenberg. Photonic-chip-based frequency combs. Nat. Photonics, 13, 158-169(2019).

    [19] C. Qin, K. Jia, Q. Li, T. Tan, X. Wang, Y. Guo, S.-W. Huang, Y. Liu, S. Zhu, Z. Xie, Y. Rao, Y. Baicheng. Electrically controllable laser frequency combs in graphene-fibre microresonators. Light Sci. Appl., 9, 185(2020).

    [20] J. Pan, B. Zhang, Z. Liu, J. Zhao, Y. Feng, L. Wan, Z. Li. Microbubble resonators combined with a digital optical frequency comb for high-precision air-coupled ultrasound detectors. Photon. Res., 8, 303-310(2020).

    [21] X. Wei, Y. Shen, J. C. Jing, A. S. Hemphill, C. Yang, S. Xu, Z. Yang, L. V. Wang. Real-time frequency-encoded spatiotemporal focusing through scattering media using a programmable 2D ultrafine optical frequency comb. Sci. Adv., 6, eaay1192(2020).

    [22] N. Picqué, T. W. Hänsch. Frequency comb spectroscopy. Nat. Photonics, 13, 146-157(2019).

    [23] Y. Bao, X. Yi, Z. Li, Q. Chen, J. Li, X. Fan, X. Zhang. A digitally generated ultrafine optical frequency comb for spectral measurements with 0.01-pm resolution and 0.7-μs response time. Light Sci. Appl., 4, e300(2015).

    [24] V. Torres-Company, A. M. Weiner. Optical frequency comb technology for ultra-broadband radio-frequency photonics. Laser Photon. Rev., 8, 368-393(2014).

    [25] P. Marin-Palomo, J. N. Kemal, M. Karpov, A. Kordts, J. Pfeifle, M. H. Pfeiffer, P. Trocha, S. Wolf, V. Brasch, M. H. Anderson, R. Rosenberger, K. Vijayan, W. Freude, T. J. Kippenberg, C. Koos. Microresonator-based solitons for massively parallel coherent optical communications. Nature, 546, 274-279(2017).

    [26] X. Xu, J. Wu, T. G. Nguyen, M. Shoeiby, S. T. Chu, B. E. Little, R. Morandotti, A. Mitchell, D. J. Moss. Advanced RF and microwave functions based on an integrated optical frequency comb source. Opt. Express, 26, 2569-2583(2018).

    [27] R. N. McDonough, A. D. Whalen. Detection of Signals in Noise(1995).

    [28] V. Ataie, D. Esman, B. P.-P. Kuo, N. Alic, S. Radic. Subnoise detection of a fast random event. Science, 350, 1343-1346(2015).

    [29] D. Esman, V. Ataie, B. P.-P. Kuo, N. Alic, S. Radic. Subnoise signal detection and communication. J. Lightwave Technol., 34, 5214-5219(2016).

    [30] B. Crockett, L. R. Cortés, S. R. Konatham, J. Azaña. Single-shot subnoise signal recovery by coherent spectral energy redistribution. CLEO: Applications and Technology, JW2A-71(2019).

    [31] G. Agrawal. Nonlinear Fiber Optics(2012).

    [32] R. M. Wood. Laser Damage in Optical Materials(1986).

    [33] B. C. Stuart, M. D. Feit, S. M. Herman, A. M. Rubenchik, B. W. Shore, M. D. Perry. Ultrashort-pulse optical damage. Proc. SPIE, 2714, 616-629(1996).

    CLP Journals

    [1] Xianglei Yan, Xihua Zou, Peixuan Li, Wei Pan, Lianshan Yan. Covert wireless communication using massive optical comb channels for deep denoising: erratum[J]. Photonics Research, 2022, 10(2): 415

    Xianglei Yan, Xihua Zou, Peixuan Li, Wei Pan, Lianshan Yan. Covert wireless communication using massive optical comb channels for deep denoising[J]. Photonics Research, 2021, 9(6): 1124
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