30 5G: Performance on the Enhancement …
321
Table 30.3 PAPR
measurements for the system
Result of PAPR at clip rate
10 −1
Technique
PAPR OFDM in dB PAPR F-OFDM in
dB
Arithmetic
8.9
8.5
Huffman
8.8
8.6
Acknowledgements Authors wishing to acknowledge gratitude to the research team and
colleagues, and this work is fully supported by UniKL MIMET on financial assistance.
References
1. Hong, W., Baek, K.H., Ko, S.: Millimeter-wave 5G antennas for smartphones: overview and
experimental demonstration. IEEE Trans. Antennas Propag. 65(12), 6250–6261 (2017)
2. Akyildiz, I.F., Nie, S., Lin, S.C., Chandrasekaran, M.: 5G roadmap: 10 key enabling
technologies. Comput. Netw. 106, 17–48 (2016)
3. Andrews, J.G., et al.: What will 5G be? IEEE J. Sel. Areas Commun. 32(6), 1065–1082 (2014)
4. Mhatli, S., Mrabet, H.: Extensive capacity simulations of massive MIMO channels for 5G
mobile communication system, 2nd Int. Conf. Comput. Appl. Inf. Secur., 1–6 (2019)
5. Boccardi, F., et al.: Five disruptive technology directions for 5G. IEEE Communications
Magazine 52(2), 74–80 (2014), g., vol. 12, no. July p. 56
6. Zhang, X., Jia, M., Chen, L., Ma, J., Qiu, J.: Filtered-OFDM—enabler for flexible waveform
in the 5th generation cellular networks, IEEE Glob. Commun. Conf. GLOBECOM (2015)
7. Ghaith, A.: Filtered orthogonal frequency division multiplexing: a waveform candidate for 5G.
Am. J. Eng. Res. 7, 99–107 (2018)
8. de Figueiredo, F., Felipe, A.P., et al.: Comparing f-OFDM and OFDM performance for MIMO
systems considering a 5G scenario. IEEE 5G World Forum, Conf. Proc. (May), 532–535 (2019)
9. Simisker, M.: A review of asymmetric numeral systems, Semantic Scholar 3619942 (January),
1–11 (2018)
10. Duda, J.: Asymmetric numeral systems, Information Theory, Crypthography and Security,
(2009). arXiv.0902.0271
11. Duda, J.: Asymmetric numeral systems: entropy coding combining speed of Huffman coding
with compression rate of arithmetic coding, pp. 1–24 (2013)
Précédent

- 337/349

Suivant