TY - JOUR
T1 - Power Efficient IRS-Assisted NOMA
AU - Zhu, Jianyue
AU - Huang, Yongming
AU - Wang, Jiaheng
AU - Navaie, Keivan
AU - Ding, Zhiguo
N1 - Funding Information:
Manuscript received May 12, 2020; revised August 28, 2020; accepted September 28, 2020. Date of publication October 26, 2020; date of current version February 17, 2021. This work was supported by the National Natural Science Foundation of China under Grants 61720106003 and 61971130, the Research Project of Jiangsu Province under Grants BE2018121 and BK20160069, the Scientific Research Foundation of Graduate School of Southeast University under Grant YBJJ1817. The associate editor coordinating the review of this article and approving it for publication was D. W. K. Ng. (Corresponding author: Yongming Huang.) Jianyue Zhu is with the National Mobile Communications Research Laboratory, Southeast University, Nanjing 210096, China, and also with the College of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China (e-mail: [email protected]).
Publisher Copyright:
© 1972-2012 IEEE.
PY - 2021/2
Y1 - 2021/2
N2 - In this paper, we propose a downlink multiple-input single-output (MISO) transmission scheme, which is assisted by an intelligent reflecting surface (IRS) consisting of a large number of passive reflecting elements. In the literature, it has been proved that nonorthogonal multiple access (NOMA) can achieve the same performance as computationally complex dirty paper coding, where the quasi-degradation condition is satisfied, conditioned on the users' channels fall in the quasi-degradation region. However, in a conventional communication scenario, it is difficult to guarantee the quasi-degradation, because the channels are determined by the propagation environments and cannot be reconfigured. To overcome this difficulty, we focus on an IRS-assisted MISO NOMA system, where the wireless channels can be effectively tuned. We optimize the beamforming vectors and the IRS phase shift matrix for minimizing transmission power. Furthermore, we propose an improved quasi-degradation condition by using IRS, which can ensure that NOMA achieves the capacity region with high possibility. For a comparison, we study zero-forcing beamforming (ZFBF) as well, where the beamforming vectors and the IRS phase shift matrix are also jointly optimized. Comparing NOMA with ZFBF, it is shown that, with the same IRS phase shift matrix and the improved quasi-degradation condition, NOMA always outperforms ZFBF. At the same time, we identify the condition under which ZFBF outperforms NOMA, which motivates the proposed hybrid NOMA transmission. Simulation results show that the proposed IRS-assisted MISO system outperforms the MISO case without IRS, and the hybrid NOMA transmission scheme always achieves better performance than orthogonal multiple access.
AB - In this paper, we propose a downlink multiple-input single-output (MISO) transmission scheme, which is assisted by an intelligent reflecting surface (IRS) consisting of a large number of passive reflecting elements. In the literature, it has been proved that nonorthogonal multiple access (NOMA) can achieve the same performance as computationally complex dirty paper coding, where the quasi-degradation condition is satisfied, conditioned on the users' channels fall in the quasi-degradation region. However, in a conventional communication scenario, it is difficult to guarantee the quasi-degradation, because the channels are determined by the propagation environments and cannot be reconfigured. To overcome this difficulty, we focus on an IRS-assisted MISO NOMA system, where the wireless channels can be effectively tuned. We optimize the beamforming vectors and the IRS phase shift matrix for minimizing transmission power. Furthermore, we propose an improved quasi-degradation condition by using IRS, which can ensure that NOMA achieves the capacity region with high possibility. For a comparison, we study zero-forcing beamforming (ZFBF) as well, where the beamforming vectors and the IRS phase shift matrix are also jointly optimized. Comparing NOMA with ZFBF, it is shown that, with the same IRS phase shift matrix and the improved quasi-degradation condition, NOMA always outperforms ZFBF. At the same time, we identify the condition under which ZFBF outperforms NOMA, which motivates the proposed hybrid NOMA transmission. Simulation results show that the proposed IRS-assisted MISO system outperforms the MISO case without IRS, and the hybrid NOMA transmission scheme always achieves better performance than orthogonal multiple access.
KW - intelligent reflecting surface
KW - Multiple-input single-output
KW - nonorthogonal multiple access
KW - quasi-degradation
KW - zero-forcing beamforming
UR - https://www.scopus.com/pages/publications/85101167368
U2 - 10.1109/TCOMM.2020.3029617
DO - 10.1109/TCOMM.2020.3029617
M3 - Article
AN - SCOPUS:85101167368
SN - 0090-6778
VL - 69
SP - 900
EP - 913
JO - IEEE Transactions on Communications
JF - IEEE Transactions on Communications
IS - 2
M1 - 9240028
ER -