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Perceptive, Resilient, and Efficient Networks assisted by Reconfigurable Intelligent Surfaces (2312.01009v2)

Published 2 Dec 2023 in eess.SP

Abstract: Wireless communications are nowadays shifting to higher operation frequencies with the aim to meet the ever-increasing demand for bandwidth. While reconfigurable intelligent surfaces (RISs) are usually envisioned to restore the line-of-sight of blocked links and to efficiently counteract the increased pathloss, their functionalities can extend far beyond these basic operations. Owing to their large surface and the multitude of scatterers, RISs can be exploited to perform advanced wavefront engineering, essentially transforming the incident beam into a non-trivial reflected beam that is able to address the challenges of high frequencies more efficiently than conventional beam-forming. In this paper it is demonstrated how advanced wavefront engineering with RISs enables beam profiles that are able to focus, bend and self-heal, thus offering functionalities beyond the current state-of-the-art. Their potential as enablers of perceptive, resilient, and efficient networks is discussed, and a localization technique based on a hybrid beam-forming/beam-focusing scheme is demonstrated.

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References (15)
  1. C. Pan, H. Ren, K. Wang, J. F. Kolb, M. Elkashlan, M. Chen, M. Di Renzo, Y. Hao, J. Wang, A. L. Swindlehurst, X. You, and L. Hanzo, “Reconfigurable intelligent surfaces for 6g systems: Principles, applications, and research directions,” IEEE Communications Magazine, vol. 59, no. 6, pp. 14–20, 2021.
  2. M. Khalily, O. Yurduseven, T. J. Cui, Y. Hao, and G. V. Eleftheriades, “Engineered electromagnetic metasurfaces in wireless communications: Applications, research frontiers and future directions,” IEEE Communications Magazine, vol. 60, no. 10, pp. 88–94, 2022.
  3. L. Dai, B. Wang, M. Wang, X. Yang, J. Tan, S. Bi, S. Xu, F. Yang, Z. Chen, M. D. Renzo, C.-B. Chae, and L. Hanzo, “Reconfigurable intelligent surface-based wireless communications: Antenna design, prototyping, and experimental results,” IEEE Access, vol. 8, pp. 45 913–45 923, 2020.
  4. E. Basar, M. D. Renzo, J. D. Rosny, M. Debbah, M.-S. Alouini, and R. Zhang, “Wireless communications through reconfigurable intelligent surfaces,” IEEE Access, vol. 7, pp. 116 753–116 773, 2019.
  5. S. Droulias and A. Alexiou, “Reconfigurable intelligent surface: an angular spectrum representation approach,” in 2022 56th Asilomar Conference on Signals, Systems, and Computers, 2022, pp. 413–418.
  6. G. Stratidakis, S. Droulias, and A. Alexiou, “Analytical performance assessment of beamforming efficiency in reconfigurable intelligent surface-aided links,” IEEE Access, vol. 9, pp. 115 922–115 931, 2021.
  7. E. Björnson, O. Ozdogan, and E. G. Larsson, “Reconfigurable intelligent surfaces: Three myths and two critical questions,” IEEE Communications Magazine, vol. 58, no. 12, pp. 90–96, 2020.
  8. N. M. Tran, M. M. Amri, J. H. Park, D. I. Kim, and K. W. Choi, “Multi-device charging ris-aided wireless power transfer systems,” in 2021 International Conference on Information and Communication Technology Convergence (ICTC), 2021, pp. 839–844.
  9. A. Aiello, G. S. Agarwal, M. Paúr, B. Stoklasa, Z. Hradil, J. Řeháček, P. de la Hoz, G. Leuchs, and L. L. Sánchez-Soto, “Unraveling beam self-healing,” Opt. Express, vol. 25, no. 16, pp. 19 147–19 157, Aug 2017. [Online]. Available: https://opg.optica.org/oe/abstract.cfm?URI=oe-25-16-19147
  10. N. K. Efremidis, Z. Chen, M. Segev, and D. N. Christodoulides, “Airy beams and accelerating waves: an overview of recent advances,” Optica, vol. 6, no. 5, pp. 686–701, May 2019. [Online]. Available: https://opg.optica.org/optica/abstract.cfm?URI=optica-6-5-686
  11. D. Inserra and G. Wen, “Demystifying self-healing property of accelerating beams for obstacles circumvention in communication applications,” in 2022 Photonics & Electromagnetics Research Symposium (PIERS), 2022, pp. 673–681.
  12. G. Stratidakis, S. Droulias, and A. Alexiou, “A beam-tracking framework for thz networks,” Frontiers in Communications and Networks, vol. 3, 2022. [Online]. Available: https://www.frontiersin.org/articles/10.3389/frcmn.2022.965336
  13. Z. Xiao, T. He, P. Xia, and X. Xia, “Hierarchical codebook design for beamforming training in millimeter-wave communication,” IEEE Trans. Wireless Commun., vol. 15, no. 5, pp. 3380–3392, May 2016.
  14. G. R. MacCartney, S. Deng, S. Sun, and T. S. Rappaport, “Millimeter-wave human blockage at 73 GHz with a simple double knife-edge diffraction model and extension for directional antennas,” in IEEE 84th Vehicular Technology Conference (VTC-Fall).   IEEE, Sep 2016.
  15. Z. Feng, B. Clerckx, and Y. Zhao, “Waveform and beamforming design for intelligent reflecting surface aided wireless power transfer: Single-user and multi-user solutions,” IEEE Transactions on Wireless Communications, vol. 21, no. 7, pp. 5346–5361, 2022.
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