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Enabling 6G Performance in the Upper Mid-Band by Transitioning From Massive to Gigantic MIMO

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arxiv 2407.05630 v3 pith:ZSBO7HRL submitted 2024-07-08 cs.IT eess.SPmath.IT

classification cs.ITeess.SPmath.IT
keywords giganticmimomanymassivemid-bandperformancepracticalreach
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The initial 6G networks will likely operate in the upper mid-band (7-24 GHz), which has decent propagation conditions but underwhelming new spectrum availability. In this paper, we explore whether we can anyway reach the ambitious 6G performance goals by evolving the multiple-input multiple-output (MIMO) technology from massive in 5G to gigantic in 6G. We describe how many antennas are needed to reach the envisioned 6G peak user rates, how many can realistically be deployed in practical radio equipment, and what the practical spatial degrees-of-freedom might become. We further suggest a new deployment strategy that enables the utilization of radiative near-field effects in these bands for precise beamfocusing, localization, and sensing from a single base station site. Finally, we identify open research and standardization challenges that must be overcome to efficiently use gigantic MIMO dimensions in 6G from hardware, cost, and algorithmic perspectives.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Capacity of MIMO Systems Aided by Microwave Linear Analog Computers (MiLACs)

    cs.IT 2025-06 conditional novelty 6.0 of 10

    Lossless and reciprocal analog beamforming networks (MiLACs) achieve the same MIMO capacity as digital beamforming with the same number of streams, using only one RF chain per stream.

  2. Noncoherent MIMO Communications: Theoretical Foundation, Design Approaches, and Future Challenges

    cs.IT 2025-05 conditional novelty 3.0 of 10

    This survey classifies noncoherent MIMO transmission into subspace, energy, and differential detection approaches and compares their trade-offs.

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