Abstract

Opportunistic beamforming (OBF) is an effective technique to improve the spectrum efficiencies (SEs) of multiple-input-multiple-output (MIMO) systems, which can obtain multiuser diversity gains with both low computation complexity and feedback information. To serve multiple users simultaneously, many multiple-access schemes have been researched in OBF. However, for most of the multiple-access schemes, the SEs are not satisfactory. To further improve the SE, this paper proposes a downlink multiuser OBF system, where both orthogonal frequency division multiplexing (OFDM) and non-orthogonal multiple-access (NOMA) methods are applied. The closed-form expressions of the equivalent channels and SE are derived in frequency selective fading channels. Then, an optimization problem is formulated to maximize the SE, although the optimization problem is non-convex and hard to solve. To obtain the solution, we divide the optimization problem into two suboptimal issues, and then a joint iterative algorithm is applied. In the proposed optimization scheme, the subcarrier mapping , user pairing and allocated power are determined to maximize spectrum efficiency (SE) and reduce bit error ratio (BER). According to numerical results, the proposed method achieves approximately 5 dB gain on both SE and BER, compared to the existing beamforming methods with low feedback information. Moreover, the SE of the proposed method is approximately 2 (bps/Hz) higher than sparse code multiple-access (SCMA), when the number of waiting users and the ratio of transmit power to noise variance are respectively 10 and 20 dB. It is indicated that the proposed scheme can achieve high and low BER with the limited feedback and computation complexity, regardless of the transmit power and the number of waiting users.

Highlights

  • Multiple-input-multiple-output (MIMO) is one of the key techniques of the generation of wireless communications, which applies space domain to improve system performance, i.e., capacity and bit error rate (BER) [1,2]

  • This paper proposes a downlink multiuser opportunistic beamforming (OBF) system, where orthogonal frequency division multiplexing (OFDM) and non-orthogonal multiple-access (NOMA) schemes are applied to deal with frequency selective fading channels and achieve multiple-access, respectively

  • It is seen that the spectrum efficiency of σ2 the proposed NOMA scheme is larger than that of sparse code multiple-access (SCMA) scheme

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Summary

Introduction

Multiple-input-multiple-output (MIMO) is one of the key techniques of the generation of wireless communications, which applies space domain to improve system performance, i.e., capacity and bit error rate (BER) [1,2]. The authors of [17] propose a SNR pre-estimation scheme matching beamforming process, which improves ergodic capacities of OBF systems. Extends OBF systems from independent fading channels to correlated fading channels, and proposed a low-latency transmission scheme, where the mapping between antenna gain and SNR is pre-loaded at BS for user selection. The power domain non-orthogonal multiple-access (NOMA) method of multibeam OBF is considered in [25], and a joint optimal resource allocation algorithm is presented to maximize the sum SE. This paper proposes a downlink multiuser OBF system, where OFDM and NOMA schemes are applied to deal with frequency selective fading channels and achieve multiple-access, respectively. A downlink multiuser opportunistic beamforming with OFDM-NOMA (OBON) system is proposed in frequency selective fading channels, which can obtain both multiuser diversity and multiplexing gains.

System Model
Constraints
Optimization Problem
Power Allocation
Subcarrier Scheduling and User Pairing
A Joint Iterative Algorithm
Convergence and Complexity
Low-Complexity Subcarrier Scheduling and User Pairing Algorithm
3: Initialize
Numerical Results
Conclusions
Full Text
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