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Electromagnetic Information Theory for Holographic MIMO Communications

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arxiv 2405.10496 v4 pith:YDO3NABC submitted 2024-05-17 cs.IT eess.SPmath.IT

classification cs.ITeess.SPmath.IT
keywords informationhmimotheorysystemselectromagneticlimitshannonanalysis
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Holographic multiple-input multiple-output (HMIMO) utilizes a compact antenna array to form a nearly continuous aperture, thereby enhancing higher capacity and more flexible configurations compared with conventional MIMO systems, making it attractive in current scientific research. Key questions naturally arise regarding the potential of HMIMO to surpass Shannon's theoretical limits and how far its capabilities can be extended. However, the traditional Shannon information theory falls short in addressing these inquiries because it only focuses on the information itself while neglecting the underlying carrier, electromagnetic (EM) waves, and environmental interactions. To fill up the gap between the theoretical analysis and the practical application for HMIMO systems, we introduce electromagnetic information theory (EIT) in this paper. This paper begins by laying the foundation for HMIMO-oriented EIT, encompassing EM wave equations and communication regions. In the context of HMIMO systems, the resultant physical limitations are presented, involving Chu's limit, Harrington's limit, Hannan's limit, and the evaluation of coupling effects. Field sampling and HMIMO-assisted oversampling are also discussed to guide the optimal HMIMO design within the EIT framework. To comprehensively depict the EM-compliant propagation process, we present the approximate and exact channel modeling approaches in near-/far-field zones. Furthermore, we discuss both traditional Shannon's information theory, employing the probabilistic method, and Kolmogorov information theory, utilizing the functional analysis, for HMIMO-oriented EIT systems.

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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. Doubly-Dispersive Continuous MIMO Systems: Channel Modeling and Beamforming Design

    eess.SP 2025-08 reject novelty 5.0 of 10

    A doubly-dispersive continuous MIMO channel model with matched-filter-like beamforming is derived, but the variational optimality proof is invalid because the unconstrained problem is unbounded.

  2. An Overview on Over-the-air Electromagnetic Signal Processing

    eess.SP 2024-12 unverdicted novelty 3.0 of 10

    A tutorial that reframes known communication-mode and metamaterial results as over-the-air electromagnetic signal processing for 6G, with illustrative MIMO precoding and direction-of-arrival examples.

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