DocumentCode :
130747
Title :
Uplink non-orthogonal multiple access for 5G wireless networks
Author :
Al-Imari, Mohammed ; Pei Xiao ; Imran, Muhammad Ali ; Tafazolli, Rahim
Author_Institution :
Centre for Commun. Syst. Res., Univ. of Surrey, Guildford, UK
fYear :
2014
fDate :
26-29 Aug. 2014
Firstpage :
781
Lastpage :
785
Abstract :
Orthogonal Frequency Division Multiple Access (OFDMA) as well as other orthogonal multiple access techniques fail to achieve the system capacity limit in the uplink due to the exclusivity in resource allocation. This issue is more prominent when fairness among the users is considered in the system. Current Non-Orthogonal Multiple Access (NOMA) techniques introduce redundancy by coding/spreading to facilitate the users´ signals separation at the receiver, which degrade the system spectral efficiency. Hence, in order to achieve higher capacity, more efficient NOMA schemes need to be developed. In this paper, we propose a NOMA scheme for uplink that removes the resource allocation exclusivity and allows more than one user to share the same subcarrier without any coding/spreading redundancy. Joint processing is implemented at the receiver to detect the users´ signals. However, to control the receiver complexity, an upper limit on the number of users per subcarrier needs to be imposed. In addition, a novel subcarrier and power allocation algorithm is proposed for the new NOMA scheme that maximizes the users´ sum-rate. The link-level performance evaluation has shown that the proposed scheme achieves bit error rate close to the single-user case. Numerical results show that the proposed NOMA scheme can significantly improve the system performance in terms of spectral efficiency and fairness comparing to OFDMA.
Keywords :
OFDM modulation; frequency division multiple access; mobile radio; signal detection; source separation; 5G wireless networks; NOMA scheme; NOMA technique; OFDMA; bit error rate; coding-spreading redundancy; link-level performance evaluation; nonorthogonal multiple access technique; orthogonal frequency division multiple access; power allocation algorithm; receiver complexity; resource allocation; system capacity limit; system spectral efficiency; uplink nonorthogonal multiple access; user signal detection; user signal separation; user sum-rate; Complexity theory; Encoding; Interference; Multiuser detection; Receivers; Resource management; Uplink; Non-orthogonal multiple access technique; fairness; spectral efficiency; uplink;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless Communications Systems (ISWCS), 2014 11th International Symposium on
Conference_Location :
Barcelona
Type :
conf
DOI :
10.1109/ISWCS.2014.6933459
Filename :
6933459
Link To Document :
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