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Energy and Spectral Efficiency of Very Large Multiuser MIMO Systems

IEEE Transactions on Communications · 2013 · Vol. 61(4) · pp. 1436–1449
Hien Quoc NgoErik G. LarssonThomas L. Marzetta

Abstract

A multiplicity of autonomous terminals simultaneously transmits data streams to a compact array of antennas. The array uses imperfect channel-state information derived from transmitted pilots to extract the individual data streams. The power radiated by the terminals can be made inversely proportional to the square-root of the number of base station antennas with no reduction in performance. In contrast if perfect channel-state information were available the power could be made inversely proportional to the number of antennas. Lower capacity bounds for maximum-ratio combining (MRC), zero-forcing (ZF) and minimum mean-square error (MMSE) detection are derived. An MRC receiver normally performs worse than ZF and MMSE. However as power levels are reduced, the cross-talk introduced by the inferior maximum-ratio receiver eventually falls below the noise level and this simple receiver becomes a viable option. The tradeoff between the energy efficiency (as measured in bits/J) and spectral efficiency (as measured in bits/channel use/terminal) is quantified for a channel model that includes small-scale fading but not large-scale fading. It is shown that the use of moderately large antenna arrays can improve the spectral and energy efficiency with orders of magnitude compared to a single-antenna system.

Advanced MIMO Systems OptimizationCooperative Communication and Network CodingAdvanced Wireless Communication TechniquesFadingSpectral efficiencyMaximal-ratio combiningMIMOMinimum mean square errorChannel state informationChannel (broadcasting)Base stationEnergy (signal processing)Mathematics

Funding

  • Royal Swedish Academy of Sciences
  • Stiftelsen för Strategisk Forskning
  • Knut och Alice Wallenbergs Stiftelse
  • Vetenskapsrådet
Citations
3,243
FWCI
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References
33
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References
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IEEE Transactions on Information Theory · 2006 · 1,735 citations
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