LiFi as an Additive 5G Bright Future
DOI:
https://doi.org/10.61841/9yffsq82Keywords:
LiFi, WiFi, 5G, radio frequency, optical wireless communicationAbstract
5G isn't only the following change of 4G innovation; it's another age. The quantity of portable web-associated gadgets is developing quickly; it is anticipated to essentially increment as the Internet of Things becomes a reality. The quantity of cell IoT develops from 5 billion to more than 20 billion by 2020. This development will proceed. It is, thusly, unavoidable that other ranges than the RF range must be utilized for future remote correspondence frameworks. Utilizing light to transmit information is the same old thing. LiFi is a remote correspondence innovation that uses the infrared and noticeable light range for fast information correspondence. LiFi alludes to the fast, bidirectional, and arranged remote interchanges utilizing light to give a consistent remote client experience, a lot like conventional portable correspondences. It's similar to WiFi yet has arrived at speeds multiple times quicker in testing, making it undeniably increasingly fit to the requests of things to come of information. LiFi isn't relied upon to totally supplant Wi-Fi; however, the two advances could be utilized correspondingly to make increasingly productive, green, and futur-confirmation get-to systems.
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[1] Q Wu, GY Li, W Chen, DWK Ng, R Schober, “An overview of sustainable green 5G networks." IEEE Wireless Communications 24 (4), 72-80
[2] F. Boccardi, R.W. Heath, A. Lozano, T.L. Marzetta, P. Popovski, Five disruptive technology directions for 5G, IEEE Commun. Mag. 52 (2) (2014) 74–80.
[3] Y. Wang, S. Videv, H. Haas, Dynamic load balancing with handover in hybrid Li-Fi and Wi-Fi networks, Proc. IEEE 25th International Symposium on Personal Indoor and Mobile Radio Communications (PIMRC), 2014, pp. 548–552.
[4] M. Ayyash et al., Coexistence of WiFi and LiFi toward 5G: concepts, opportunities, and challenges, IEEE Commun. Mag. 54 (2) (2016) 64–71
[5] H. Haas, “LiFi is a paradigm-shifting 5G technology,” Elsevier Reviews in Physics Volume 3, November 2018, Pages 26-3
[6] M. Uysal and H. Nouri, ``Optical wireless communications: an emerging technology,'' in Proc. Int. Conf. Transp. Opt. Netw., Jul. 2014, pp. 1-7.
[7] H. Haas, Wireless data from every light bulb, TED Global, August 2011.
[8] H. Haas, L. Yin, Y. Wang, C. Chen, What is LiFi? IEEE J. Light. Technol. 34 (6) (2016) 1533–1544.
[9] H. Haas, High-speed wireless networking using visible light, SPIE Newsroom (2013).
[10] H. Haas, High-speed wireless networking using visible light, SPIE Newsroom (2013).
[11] C. Chen, V.S., D. Tsonev, H. Haas, Fractional frequency reuse in DCO-OFDM-based optical attocell networks, J. Light. Technol. 33 (19) (2015) 3986–4000.
[12] M.Z. Afgani, H. Haas, H. Elgala, D. Knipp, Visible light communication using OFDM, Proc. IEEE 2nd Int. Conf. Testbeds Res. Infrastructures Develop. Netw. Communities, 2006, pp. 129–134.
[13] Z. Ghassemlooy, S. Arnon, M. Uysal, Z. Xu, and J. Cheng, ``Emerging optical wireless communications—advances and challenges,'' IEEE J. Sel. Areas Commun., vol. 33, no. 9, pp. 1738_1749, Sep. 2015.
[14] S. Dimitrov and H. Haas, Principles of LED Light Communications: Towards Networked Li-Fi. Cambridge, U.K.: Cambridge University Press, Mar. 2015.
[15] Z. Huang and Y. Ji, "Design and demonstration of room division multiplexing-based hybrid VLC network," Chinese Optics Letters, vol. 11, no. 6, pp. 1671-7694, 2013.
[16] J. G. Andrews, H. Claussen, M. Dohler, S. Rangan, and M. C. Reed, "Femtocells: Past, Present, and Future," IEEE J. Sel. Areas Commun., vol. 30, no. 3, p. 497–508, 2012.
[17] S.D. Dissanayake, J. Armstrong, “Comparison of ACO-OFDM, DCO-OFDM and ADO-OFDM in IM/DD Systems”,
IEEE Journal of Lightwave Technology, Volume: 31, Issue: 7, April 1, 2013, pp. 1063-1072.
[18] Y. Liang, H. Haas, Physical-layer security in multiuser visible light communication networks, IEEE J. Sel. Areas Commun. (2017).
[19] W. Ni, R.P. Liu, B. Collings, X. Wang, Indoor cooperative small cells over Ethernet, IEEE Commun. Mag. 51 (9) (2013) 100–107.
[20] A. Papaioannou, F.N. Pavlidou, Evaluation of power line communication equipment in home networks, IEEE Syst. J. 3 (3) (2009) 288–294.
[21] V.H. MacDonald, The cellular concept, Bell Syst. Tech. J. 58 (1) (1979) 15–43
[22] A. Goldsmith, Wireless Communications, Cambridge University Press, 2005.
[23] J.M. Kahn and J. R. Barry, “Wireless infrared communications,” Proc. IEEE, vol. 85, p. 1997, 265–298.
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