English

Beamforming Optimization for Full-Duplex Wireless-powered MIMO Systems

Information Theory 2017-05-12 v1 math.IT

Abstract

We propose techniques for optimizing transmit beamforming in a full-duplex multiple-input-multiple-output (MIMO) wireless-powered communication system, which consists of two phases. In the first phase, the wireless-powered mobile station (MS) harvests energy using signals from the base station (BS), whereas in the second phase, both MS and BS communicate to each other in a full-duplex mode. When complete instantaneous channel state information (CSI) is available, the BS beamformer and the time-splitting (TS) parameter of energy harvesting are jointly optimized in order to obtain the BS-MS rate region. The joint optimization problem is non-convex, however, a computationally efficient optimum technique, based upon semidefinite relaxation and line-search, is proposed to solve the problem. A sub-optimum zero-forcing approach is also proposed, in which a closed-form solution of TS parameter is obtained. When only second-order statistics of transmit CSI is available, we propose to maximize the ergodic information rate at the MS, while maintaining the outage probability at the BS below a certain threshold. An upper bound for the outage probability is also derived and an approximate convex optimization framework is proposed for efficiently solving the underlying non-convex problem. Simulations demonstrate the advantages of the proposed methods over the sub-optimum and half-duplex ones.

Keywords

Cite

@article{arxiv.1705.04014,
  title  = {Beamforming Optimization for Full-Duplex Wireless-powered MIMO Systems},
  author = {Batu K. Chalise and Himal A. Suraweera and Gan Zheng and George K. Karagiannidis},
  journal= {arXiv preprint arXiv:1705.04014},
  year   = {2017}
}

Comments

14 pages, accepted