DocumentCode :
15909
Title :
Massive MIMO with Non-Ideal Arbitrary Arrays: Hardware Scaling Laws and Circuit-Aware Design
Author :
Bjornson, Emil ; Matthaiou, Michail ; Debbah, Merouane
Author_Institution :
KTH R. Inst. of Technol., Stockholm, Sweden
Volume :
14
Issue :
8
fYear :
2015
fDate :
Aug. 2015
Firstpage :
4353
Lastpage :
4368
Abstract :
Massive multiple-input multiple-output (MIMO) systems are cellular networks where the base stations (BSs) are equipped with unconventionally many antennas, deployed on co-located or distributed arrays. Huge spatial degrees-of-freedom are achieved by coherent processing over these massive arrays, which provide strong signal gains, resilience to imperfect channel knowledge, and low interference. This comes at the price of more infrastructure; the hardware cost and circuit power consumption scale linearly/affinely with the number of BS antennas N. Hence, the key to cost-efficient deployment of large arrays is low-cost antenna branches with low circuit power, in contrast to today´s conventional expensive and power-hungry BS antenna branches. Such low-cost transceivers are prone to hardware imperfections, but it has been conjectured that the huge degrees-of-freedom would bring robustness to such imperfections. We prove this claim for a generalized uplink system with multiplicative phase-drifts, additive distortion noise, and noise amplification. Specifically, we derive closed-form expressions for the user rates and a scaling law that shows how fast the hardware imperfections can increase with N while maintaining high rates. The connection between this scaling law and the power consumption of different transceiver circuits is rigorously exemplified. This reveals that one can make √N the circuit power increase as N, instead of linearly, by careful circuit-aware system design.
Keywords :
MIMO communication; antenna arrays; antenna radiation patterns; cellular radio; radio transceivers; radiofrequency interference; wireless channels; additive distortion noise; base station; circuit aware design; colocated antenna array; degree of freedom; distributed antenna array; generalized uplink system; hardware cost; hardware scaling law; imperfect channel knowledge; low-cost transceiver; massive MIMO cellular network; multiple input multiple output system; multiplicative phase drift; noise amplification; nonideal arbitrary array; power hungry BS antenna branch; transceiver circuit power consumption; Antenna arrays; Hardware; Interference; MIMO; Noise; Wireless communication; Achievable user rates; channel estimation; massive MIMO; scaling laws; transceiver hardware imperfections;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2015.2420095
Filename :
7080890
Link To Document :
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