M.J. Mohsin, I.A. Murdas, Performance analysis of an outdoor li-fi system-based AO-OFDM architecture under different FSO turbulence and weather conditions. Opik. 273, 170427 (2023)
V. Baeza, R.A. Garcia, LiFi technology overview: taxonomy, and future directions. ArXiv Preprint at https://arxiv.org/abs/2303.09690 (2023).
N.T. Almalah, F.E. Mahmood, M.T. Yassen, Li-Fi technology in optical communication systems: A review. Al-Iraqia J. Sci. Eng. Res. 3(3), 163–171 (2024)
X. Wu et al., Hybrid LiFi and WiFi networks: A survey. IEEE Commun. Surv. Tutor. 23(2), 1398–1420 (2021)
M. Al-Hamiri, H.J. Nasar, A Review of LiFi Technology: Principles and Applications. Proc. IEEE Conf. (2023); 1–6. https://doi.org/10.1109/ACA57612.2023.10346813
H. Abuella, M. Elamassie, M. Uysal, Z. Xu, E. Serpedin, K.A. Qaraqe, S. Ekin, Hybrid RF/VLC systems: A comprehensive survey on network topologies, performance analyses, applications, and future directions. IEEE Access. 9, 160402–160436 (2021)
L. Bravo Alvarez, S. Montejo-Sánchez, L. Rodríguez-López, C. Azurdia-Meza, G. Saavedra, A review of hybrid VLC/RF networks: features, applications, and future directions. Sensors. 23, 7545 (2023)
A. Memedi, F. Dressler, Vehicular visible light communications: A survey. IEEE Commun. Surv. Tutor. (2020). https://doi.org/10.1109/COMST.2020.3034224
T. Tang, T. Shang, Q. Li, Impact of multiple shadows on visible light communication channel. IEEE Commun. Lett. 25(2), 513–517 (2021). https://doi.org/10.1109/LCOMM.2020.3031645
A. Agarwal, C. Mohanta, G. Misra, Principle, future scope, challenges and applications. Am. J. Electr. Electron. Eng. 10(1), 1–5 (2022)
A.R. Ndjiongue, T. Ngatched, O. Dobre, A. Garcia Armada, VLC-Based networking: feasibility and challenges. IEEE Netw. (2020). https://doi.org/10.1109/MNET.001.1900428
A.H. Hasanudin et al., From WI-FI to LI-FI: a comprehensive review of integration strategies. Przegląd Elektrotechniczny 9 (2023).
T. Kaur, Y. Sharma, R. Sikand, Futuristic aspects of Li-Fi technology. AIP Conf. Proc. 2024; 3121(1). https://doi.org/10.1063/5.0202140
S. Chatterjee, B. Roy, An approach to ensure joint illumination & communication performance of a forward error corrected indoor visible light communication (VLC) system in presence of ambient light interference. J. Opt. Commun. 44(s1), s1767–s1776 (2023). https://doi.org/10.1515/joc-2019-0212
V. Georlette, S. Bette, S. Brohez, R. Pérez-Jiménez, N. Point, V. Moeyaert, Outdoor visible light communication channel modeling under smoke conditions and analogy with fog conditions. Optics. 1(3), 259–281 (2020)
J.P. Patra et al., An efficient signal detection technique for STBC-OFDM in fast fading channel. Proc. Int. Conf. Comput. Sci. Commun. Secur. Springer, (2023)
M.A.S. Sejan, M.H. Rahman, M.A. Aziz, D.S. Kim, Y.H. You, H.K. Song, A comprehensive survey on MIMO visible light communication: current research, machine learning and future trends. IEEE Commun. Surv. Tutor. (2023)
A.E. Ibhaze, P.E. Orukpe, F.O. Edeko, High capacity data rate system: review of visible light communications technology. J. Electron. Sci. Technol. 18(3), 100055 (2020). https://doi.org/10.1016/j.jnlest.2020.100055
A.E. Ibhaze, P.E. Orukpe, F.O. Edeko, High-capacity data rate system: review of visible light communications technology. J. Electron. Sci. Technol. 18(3), 100055 (2020)
P.A. Loureiro, F.P. Guiomar, P.P. Monteiro, Visible light communications: A survey on recent High-Capacity demonstrations and digital modulation techniques. Photonics. 10, 993 (2023). https://doi.org/10.3390/photonics10090993
W.C. Wu, Detection and performance analysis for MIMO visible light communication system using joint optical Spatial and pulse amplitude width modulation. J. Wirel. Com. Netw. 8 (2024). https://doi.org/10.1186/s13638-024-02335-x
R.C. Fon, A.R. Ndjiongue, K. Ouahada, A.M. Abu-Mahfouz, Fibre optic-VLC versus laser-VLC: a review study. Photon Netw. Commun. 46(1), 1–15 (2023)
M.E. Ali, A.A. Abdulkafi, OFDM-Based VLC systems: A systematic review. BIO Web Conf. 97, 00090 (2024)
Z. Wang, S. Han, N. Chi, Performance enhancement based on machine learning scheme for space multiplexing 2×2 MIMO VLC system employing joint independent component analysis. Opt. Commun. 458,124733 (2020). https://doi.org/10.1016/j.optcom.2019.124733
M.A. Taher, M. Abaza, M. Fedawy, M.H. Aly, Relay selection schemes for FSO communications over turbulent channels. Appl. Sci. 9, 1281 (2019). https://doi.org/10.3390/app9071281
A. Alwarafy, M. Alresheedi, A.F. Abas, A. Alsanie, Performance evaluation of space time coding techniques for indoor visible light communication systems. Proc. Int. Conf. Opt. Netw. Des. Model. (ONDM) 88–93 (2018)
M.G. Al-Hamiri, H.J. Abd, Design and performance evaluation of a hybrid LIFI transceiver using OSTBC-based Spatial multiplexing and transmit diversity. e-Prime Adv. Electr. Eng. Electron. Energy. 6, 100283 (2023)
S.M. Mana, K.G.K. Gabra, S.M. Kouhini, P. Hellwig, J. Hilt, V. Jungnickel, An Efficient Multi-Link Channel Model for LiFi. Proc. IEEE PIMRC 1–6 (2021). https://doi.org/10.1109/PIMRC50174.2021.9569661
V. Dixit, A. Kumar, BER analysis of dynamic FOV based MIMO-NOMA-VLC system. AEU Int. J. Electron. Commun. 142, 153989 (2021)
G. Gong, C. Gan, Y. Fang, Y. Zhu, Q. Hu, Link-blockage model and AP-placement scheme for no-blockage link between AGV and AP in Logistics–warehousing VLC network. Photonics. 10(1), 31 (2022)
M.G. Al-Hamiri, H.J. Abd, Enhancing the performance of LiFi communication with OSTBC, QAM, and OFDM: High-capacity, low-complexity transceiver design. Results Opt. 16, 100675 (2024). https://doi.org/10.1016/j.rio.2024.100675
M.G. Al-Hamiri, and H. J. Abd, Designing a LiFi Transceiver based Space Time Block Coding with different pulses, 2022 3rd Information Technology To Enhance e-learning and Other Application (IT-ELA), Baghdad, Iraq, 110–115 (2022). https://doi.org/10.1109/IT-ELA57378.2022.10107931
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