Title :
Low RF-Complexity Millimeter-Wave Beamspace-MIMO Systems by Beam Selection
Author :
Amadori, Pierluigi V. ; Masouros, Christos
Author_Institution :
Dept. of Electron. & Electr. Eng., Univ. Coll. London, London, UK
Abstract :
Communications in millimeter-wave (mm-wave) spectrum (30-300 GHz) have experienced a continuous increase in relevance for short-range, high-capacity wireless links, because of the wider bandwidths they are able to provide. In this work, we introduce a new mm-wave frequency transmission scheme that exploits a combination of the concepts of beamspace multi-input multi-output (B-MIMO) communications and beam selection to provide near-optimal performances with a low hardware-complexity transceiver. While large-scale MIMO approaches in mm-wave are affected by high dimensional signal space that increases considerably both complexity and costs of the system, the proposed scheme is able to achieve near-optimal performances with a reduced radio-frequency (RF) complexity thanks to beam selection. We evaluate the advantages of the proposed scheme via capacity computations, comparisons of numbers of RF chains required and by studying the trade-off between spectral and power efficiency. Our analytical and simulation results show that the proposed scheme is capable of offering a significant reduction in RF complexity with a realistic low-cost approach, for a given performance. In particular, we show that the proposed beam selection algorithms achieve higher power efficiencies than a full system where all beams are utilized.
Keywords :
MIMO communication; communication complexity; radio links; radio transceivers; beam selection algorithm; beamspace multiinput multioutput communication; frequency 30 GHz to 300 GHz; large-scale MIMO approach; low RF-complexity millimeter-wave B-MIMO communication system; low hardware complexity transceiver; mmwave frequency transmission scheme; reduced RF complexity; reduced radiofrequency complexity; short-range high-capacity wireless link; Array signal processing; Channel models; Complexity theory; Interference; MIMO; Radio frequency; Signal to noise ratio; Capacity maximization; High dimensional MIMO; Multiuser MIMO; SINR maximization; beam selection; beamforming; capacity maximization; multiuser MIMO;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2015.2431266