Details

Title

Performance analysis of DFT-S-OFDM waveform for Li-Fi systems

Journal title

Opto-Electronics Review

Yearbook

2021

Volume

29

Issue

4

Affiliation

Hussin, Saleh : Electronics and Communication Engineering Department, Faculty of Engineering, Zagazig University, Zagazig, 44519 Egypt ; Shalaby, Eslam M. : Electronics and Communication Engineering Department, Higher Technological institute, 10th of Ramadan City, Megawra 1, 44629 Egyp

Authors

Keywords

light-fidelity ; visible light communications ; orthogonal frequency division multiplexing ; discrete Fourier transform spread ; peak-to-average power ratio

Divisions of PAS

Nauki Techniczne

Coverage

167-174

Publisher

Polish Academy of Sciences (under the auspices of the Committee on Electronics and Telecommunication) and Association of Polish Electrical Engineers in cooperation with Military University of Technology

Bibliography

  1. Armstrong, OFDM for optical communications. J. Light. Technol. 27, 189–204 (2009). https://doi.org/10.1109/JLT.2008.2010061
  2. Noé, Essentials of Modern Optical Fiber Communication. (Springer International Publishing, 2010). https://doi.org/10.1007/978-3-642-04872-2
  3. Sufyan Islim, M. & Haas, H. Modulation techniques for Li⁃ ZTE Commun. 14, 29–40 (2016).
  4. DoCoMo, NTT, NEC, SHARP, R1-050702: DFT-spread OFDM with pulse shaping filter in frequency domain in evolved UTRA uplink (2005).
  5. Myung, H. G., Lim, J. & Goodman, D. J. (2006). Peak-to-average power ratio of single carrier fdma signals with pulse shaping. in IEEE 17th International Symposium on Personal, Indoor and Mobile Radio Communications 1–5 (IEEE, Helsinki, Finland 2006). https://doi.org/10.1109/PIMRC.2006.254407
  6. Lomba, C., Valades, R. & Duarte, A. Efficient simulation of the impulse response of the indoor wireless optical channel. Int. J. Commun. Syst. 13, 537–549 (2000). https://doi.org/10.1002/1099-1131(200011/12)13:7/8%3C537::AID-DAC455%3E3.0.CO;2-6
  7. Haas, H. et al. Introduction to indoor networking concepts and challenges in Li-Fi., J. Opt. Commun. Netw. 12, A190–A203 (2020). https://doi.org/10.1364/JOCN.12.00A190
  8. Alonso-Gonzales, I. et al. Discrete indoor three-dimensional locali-zation system based on neural networks using visible light communi-cation. Sensors 18, 1040 (2018). https://doi.org/10.3390/s18041040
  9. Wu, X., Safari, M. & Haas, H. Access point selection for hybrid li-fi and Wi-Fi networks. IEEE Trans. Commun. 65, 5375–5385 (2017). https://doi.org/10.1109/TCOMM.2017.2740211
  10. Barry, J. R. et al. Simulation of multipath impulse response for indoor wireless optical channels. IEEE J. Sel. Areas Commun. 11, 367–379 (1993). https://doi.org/10.1109/49.219552
  11. Zeng, L. et al. improvement of date rate by using equalization in an indoor visible light communication system. in 4th IEEE Inter-national Conference on Circuits and Systems for 678–682 (IEEE, Shanghai, China 2008). https://doi.org/10.1109/ICCSC.2008.149
  12. Kahn, J. & Barry, J. R. Wireless infrared communications. Proc. IEEE 85, 265–298 (1997). https://doi.org/10.1109/5.554222
  13. Jungnickel, V. et al. A physical model of the wireless infrared communication channel. IEEE J. Sel. Areas Commun. 20, 631–640 (2002). https://doi.org/10.1109/49.995522
  14. Zhan, X. et al. Comparison and analysis of DCO-OFDM, ACO-OFDM and ADO-OFDM in IM/DD systems. Appl. Mech. Mater. 701-702, 1059–1062 (2015). https://doi.org/10.4028/www.scientific.net/AMM.701-702.1059
  15. Zhang, M. & Zhang, Z. An optimum DC-biasing for DCO-OFDM system. IEEE Commun. Lett. 18, 1351–1354 (2014) https:/doi.org/10.1109/LCOMM.2014.2331068
  16. Carruthers, J. B. & Kahn, J. Multiple subcarrier modulation for nondirected wireless infrared communication. IEEE J. Sel. Areas Commun. 14, 538–546 (1996). https://doi.org/10.1109/49.490239
  17. Lee, S. H., Jung, S.-Y. & Kwon, J. K. Modulation and coding for dimmable visible light communication. IEEE Commun. Mag. 53, 136–143 (2015). https://doi.org/10.1109/MCOM.2015.7045402
  18. Acolatse , Bar-Ness, Y. & Wilson, S. K. Novel techniques of single carrier frequency domain equalization for optical wireless communications. EURASIP J.Adv. Signal Process. 2011, 393768 (2011). https://doi.org/10.1155/2011/393768
  19. Myung, H. G., Lim, J. & Goodman, D. J. Single carrier FDMA for uplink wireless transmission. IEEE Veh. Technol. Mag. 1, 30–38 (2006). https://doi.org/10.1109/MVT.2006.307304
  20. Sorger, U., De Broeck, I. & Schnell, M. Interleaved FDMA-a new spread-spectrum multiple-access scheme. in 1998 IEEE International Conference on Communications. Conference Record (ICC). Affiliated with SUPERCOMM'98. 2, 1013–1017 (IEEE, Atlanta, USA 1998). https://doi.org/10.1109/ICC.1998.685165
  21. Wu, Z.-Y. et al. Optimized DFT-spread OFDM based visible light communications with multiple lighting sources. Opt. Express 25, 26468–26482 (2017). https:/doi.org/10.1364/OE.25.026468
  22. Ch., Zhang, H. & Xu, W. On visible light communication using led array with DFT-spread OFDM. in 2014 IEEE International Conference on Communications (ICC) 3325–33302014 (IEEE, Sydney, Australia 2014). https://doi.org/10.1109/ICC.2014.6883834
  23. Puntsri, K. & Ekkaphol, K. Experimental comparison of OFDM SC-FDM and PAM for low speed optical wireless communication systems. In 7th International Electrical Engineering Congress (iEECON) 1–4 (IEEE, Hua Hin, Thailand 2019). https://doi.org/10.1109/iEECON45304.2019.8938969

Date

29.03.2022

Type

Article

Identifier

DOI: 10.24425/opelre.2021.139753
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