Abstract

This paper investigates the application of simultaneous wireless information and power transfer (SWIPT) to cooperative non-orthogonal multiple access (NOMA). A new cooperative multiple-input single-output (MISO) SWIPT NOMA protocol is proposed, where a user with a strong channel condition acts as an energy-harvesting (EH) relay to help a user with a poor channel condition. The power splitting (PS) scheme is adopted at the EH relay. By jointly optimizing the PS ratio and the beamforming vectors, the design objective is to maximize the data rate of the "strong user" while satisfying the QoS requirement of the "weak user". It boils down to a challenging nonconvex problem. To resolve this issue, the semidefinite relaxation (SDR) technique is applied to relax the quadratic terms related with the beamformers, and then it is solved to its global optimality by two-dimensional exhaustive search. We prove the rank-one optimality, which establishes the equivalence between the relaxed problem and the original one. To further reduce the high complexity due to the exhaustive search, an iterative algorithm based on successive convex approximation (SCA) is proposed, which can at least attain its stationary point efficiently. In view of the potential application scenarios, e.g., IoT, the single-input single-output (SISO) case of the cooperative SWIPT NOMA system is also studied. The formulated problem is proved to be strictly unimodal with respect to the PS ratio. Hence, a golden section search (GSS) based algorithm with closed-form solution at each step is proposed to find the unique global optimal solution. It is worth pointing out that the SCA method can also converge to the optimal solution in SISO cases. In the numerical simulation, the proposed algorithm is numerically shown to converge within a few iterations, and the SWIPT-aided NOMA protocol outperforms the existing transmission protocols.

Highlights

  • Great interests have been drawn in non-orthogonal multiple access (NOMA), which is envisioned as an enabling technique to improve the spectral efficiency (SE) of the upcoming fifth generation (5G) network [2], especially in order to satisfy the requirement of the Internet of Things (IoT) to support massive connectivity [3]

  • We find that the noncooperative NOMA strategy with multiple-input single-output (MISO) achieves a better performance than the cooperative simultaneous wireless information and power transfer (SWIPT) NOMA with single-input single-output (SISO) in the high transmission power regime, which implies the importance of the multi-antenna technique

  • The reformulated problem can be solved to its global optimal solution by two-dimensional exhaustive search

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Summary

INTRODUCTION

Great interests have been drawn in non-orthogonal multiple access (NOMA), which is envisioned as an enabling technique to improve the spectral efficiency (SE) of the upcoming fifth generation (5G) network [2], especially in order to satisfy the requirement of the Internet of Things (IoT) to support massive connectivity [3]. The considered system consists of a base station (BS) and two users, in which the “strong user” harvests the energy by using power splitting scheme, and acts as a relay to help the “weak user”. We propose a cooperative SWIPT-aided NOMA transmission strategy, where the “strong user” acts as an EH relay to help the “weak user” to improve the communication reliability. Motivated by the practical applications, we consider the cooperative SWIPT NOMA transmission strategy in SISO cases. Denotes the statistical expectation. a denotes the Euclidean norm of vector a and |b| denotes the magnitude of a complex number b

SYSTEM MODEL AND PROBLEM FORMULATION
Direct Transmission Stage
Cooperative Transmission Stage
SUBOPTIMAL BEAMFORMING DESIGN AND POWER SPLITTING CONTROL
Reformulation of P1 with SDR
1: Initialization
SCA-based Algorithm for P4
Problem Formulation in SISO Cases
Global Optimal Solution to P6
Simulation Setup
Sum Rate of Users
Optimality of the Obtained Solutions
CONCLUSIONS
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