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Efficient Linearization Technique for Crosstalk and Power Amplifier Nonlinearity Suitable for Massive MIMO Transmitters

Publication Type : Journal Article

Publisher : IET Commun

Source : IET Commun., vol. 14, no. 9, pp. 1485–1494

Url : https://www.researchgate.net/publication/340002190_Efficient_Linearization_Technique_for_Crosstalk_and_Power_Amplifier_Nonlinearity_Suitable_for_Massive_MIMO_Transmitters

Campus : Bengaluru

School : School of Engineering

Department : Electronics and Communication

Year : 2020

Abstract : Massive multi‐input–multi‐output (MIMO) is expected to be an eminent technique to meet the demands of high system capacity and data rates of wireless networks in 5G wireless communication. However due to inherent imperfections of the transmitter such as power‐amplifier (PA) non‐linearity and crosstalk, practically, the signal quality suffers and does not reap sufficient benefits from the various MIMO techniques. Digital predistortion (DPD) is a popular technique for single‐input–single‐output transmission to enhance signal quality. This study examines the issue of high DPD's complexity in mitigating imperfections in MIMO transmitters. This work proposes a less complex, novel DPD model for linearising large‐scale MIMO transmitters along with its characterisation procedure. The proof‐of‐concept is provided with the measurement setup containing 4×1 MIMO transmitters in the presence of non‐linear crosstalk, linear crosstalk, and strong PA non‐linearity. The proposed model performs comparably to the state‐of‐art DPD models like parallel Hammerstein and dual‐input crosstalk mismatch with lower number of floating‐point operations (flops). The proposed model improves adjacent channel power ratio up to −54.13 dBc and error vector magnitude up to 1.08% for LTE signal of 40 MHz bandwidth.

Cite this Research Publication : P. Jaraut, M. Rawat, and F. M. Ghannouchi, “Efficient Linearization Technique for Crosstalk and Power Amplifier Nonlinearity Suitable for Massive MIMO Transmitters,” IET Commun., vol. 14, no. 9, pp. 1485–1494

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