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In this paper, the feasibility of implementing a lightweight key distribution scheme using physical layer security for secret key generation (SKG) is explored.
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A. Chorti, A. N. Barreto, S. Köpsell, M. Zoli, M. Chafii, P. Sehier, G. Fettweis, and H. V. Poor, “Context-aware security for 6G wireless: The role of physical layer security,” IEEE Commun. Stand. Mag. , vol. 6, no. 1, pp. 102–108, 2022
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M. Mitev, A. N. Barreto, T. M. Pham, and G. Fettweis, “Secret key generation rates over frequency selective channels,” in IEEE 95th Veh. Tech. Conf (VTC2022-Spring) , Helsinki, Finland, Jun. 2022, pp. 1–5
2022
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A. Mayya, M. Mitev, A. Chorti, and G. Fettweis, “Effects of channel characteristics and design parameters on secret key generation rates,” in European Conf. Networks and Communications , Gothenburg, Sweden, Jun. 2023, pp. 1–2
2023
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A. Mayya, M. Mitev, A. Chorti, and G. Fettweis, “A SKG security challenge: Indoor SKG under an on-the-shoulder eavesdropping attack,” in IEEE Global Commun. Conf. , Kuala Lumpur, Malaysia, Dec. 2023, pp. 1–6
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H. V. Poor and R. F. Schaefer, “Wireless physical layer security,” Proc. Natl. Acad. Sci. U.S.A. , vol. 114, no. 1, pp. 19–26, Jan. 2017
2017
Cited alongside, same era.
Y. Wu, A. Khisti, C. Xiao, G. Caire, K.-K. Wong, and X. Gao, “A survey of physical layer security techniques for 5G wireless networks and challenges ahead,” IEEE J. Sel. Areas Commun. , vol. 36, no. 4, pp. 679–695, 2018
2018
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“3GPP, Release 16, TR 38.901, Study on channel model for frequencies from 0.5 to 100 GHz.”
Cited in the paper.
Later among the works it cites.
M. Mitev, A. Mayya, and A. Chorti, “Joint secure communication and sensing in 6G networks,” in Physical Layer Security for 6G . Wiley-IEEE Press, 2024
2024
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