On array geometry and self-interference in full-duplex massive MIMO communications

2023 57th Asilomar Conference on Signals, Systems, and Computers(2024)

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摘要
This paper studies the role of the joint transmit-receive antenna array geometry in shaping the self-interference (SI) channel in full-duplex communications. We consider a simple spherical wave SI model and two prototypical linear array geometries with uniformly spaced transmit and receive antennas. We show that the resulting SI channel matrix has a regular (Toeplitz) structure in both of these cases. However, the number of significant singular values of these matrices - an indication of the severity of SI - can be markedly different. We demonstrate that both reduced SI and high angular resolution can be obtained by employing suitable sparse array configurations that fully leverage the available joint transmit-receive array aperture without suffering from angular ambiguities. Numerical electromagnetic simulations also suggest that the worst-case SI of such sparse arrays need not increase - but can actually decrease - with the number of antennas. Our findings provide preliminary insight into the extent to which the array geometry alone can mitigate SI in full-duplex massive MIMO communications systems employing a large number of antennas.
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关键词
Massive Multiple-input Multiple-output,Array Geometry,Full-duplex Communication,Massive Multiple-input Multiple-output Communication,High-resolution,Communication Systems,Sparsity,Singular Value,Linear Array,Antenna Array,Angular Resolution,Channel Matrix,Array Configuration,High Angular Resolution,Spherical Wave,Array Aperture,Analog-to-digital Converter,Base Station,Wireless Systems,Beamforming,Rx Antenna,Tx Antenna,Future Wireless Systems,Array Design,Toeplitz Matrix,Uniform Linear Array,Impact Of Geometry,Antenna Array Design,Largest Singular Value
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