Hardware impairments, such as phase noise, quantization errors, non-linearities, and noise amplification, have baneful effects on wireless communications. In this paper, we investigate the effect of hardware impairments on multipair massive multiple-input multiple-output (MIMO) two-way full-duplex relay systems with amplify-and-forward scheme. More specifically, novel closed-form approximate expressions for the spectral efficiency are derived to obtain some important insights into the practical design of the considered system. When the number of relay antennas N increases without bound, we propose a hardware scaling law, which reveals that the level of hardware impairments that can be tolerated is roughly proportional to N. This new result inspires us to design low-cost and practical multipair massive MIMO two-way full-duplex relay systems. Moreover, the optimal number of relay antennas is derived to maximize the energy efficiency. Finally, Motor-Carlo simulation results are provided to validate our analytical results.
@article{arxiv.1708.00742,
title = {Multipair Massive MIMO Two-Way Full-Duplex Relay Systems with Hardware Impairments},
author = {Ying Liu and Xipeng Xue and Jiayi Zhang and Xu Li and Linglong Dai and Shi Jin},
journal= {arXiv preprint arXiv:1708.00742},
year = {2017}
}
Comments
6 pages, 3 figures, accepted by IEEE Globecom 2017