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Beamspace MIMO for Millimeter-Wave Communications: System Architecture, Modeling, Analysis, and Measurements

IEEE Transactions on Antennas and Propagation · 2013 · Vol. 61(7) · pp. 3814–3827
John BradyNader BehdadA.M. Sayeed

Abstract

Millimeter-wave wireless systems are emerging as a promising technology for meeting the exploding capacity requirements of wireless communication networks. Besides large bandwidths, small wavelengths at mm-wave lead to a high-dimensional spatial signal space, that can be exploited for significant capacity gains through high-dimensional multiple-input multiple-output (MIMO) techniques. In conventional MIMO approaches, optimal performance requires prohibitively high transceiver complexity. By combining the concept of beamspace MIMO communication with a hybrid analog-digital transceiver, continuous aperture phased (CAP) MIMO achieves near-optimal performance with dramatically lower complexity. This paper presents a framework for physically-accurate computational modeling and analysis of CAP-MIMO, and reports measurement results on a DLA-based prototype for multimode line-of-sight communication. The model, based on a critically sampled system representation, is used to demonstrate the performance gains of CAP-MIMO over state-of-the-art designs at mm-wave. For example, a CAP-MIMO system can achieve a spectral efficiency of 10–20 bits/s/Hz with a 17–31 dB power advantage over state-of-the-art, corresponding to a data rate of 10–200 Gbps with 1–10 GHz system bandwidth. The model is refined to analyze critical sources of power loss in an actual multimode system. The prototype-based measurement results closely follow the theoretical predictions, validating CAP-MIMO theory, and illustrating the utility of the model.

Millimeter-Wave Propagation and ModelingMicrowave Engineering and WaveguidesAdvanced MIMO Systems OptimizationMIMO3G MIMOComputer scienceElectronic engineeringExtremely high frequencySpectral efficiencyTransceiverSpatial multiplexingCommunications systemWireless

Funding

  • National Science Foundation
  • Wisconsin Alumni Research Foundation
  • Division of Electrical, Communications and Cyber Systems
Citations
763
FWCI
28.37
field-weighted impact
References
39
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100%
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References
An introduction to millimeter-wave mobile broadband systems
IEEE Communications Magazine · 2011 · 2,603 citations
Mutual Coupling in MIMO Wireless Systems: A Rigorous Network Theory Analysis
IEEE Transactions on Wireless Communications · 2004 · 614 citations
Deconstructing multiantenna fading channels
IEEE Transactions on Signal Processing · 2002 · 1,142 citations
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