Channel Estimation via Tensor Decomposition for Dynamic Metasurface Antennas with Known Mutual Coupling: Algorithms and Experiments
Jean Tapie, Bruno Sokal, Andr\'e L. F. de Almeida, Philipp del Hougne

TL;DR
This paper introduces tensor decomposition algorithms for accurate channel estimation in dynamic metasurface antennas with known mutual coupling, validated through experiments on an 18 GHz prototype, outperforming prior methods.
Contribution
It develops novel tensor-based algorithms specifically designed for DMA channel estimation considering mutual coupling effects, with experimental validation and practical insights.
Findings
Achieved 43.1 dB accuracy in channel estimation, close to the noise limit.
Tensor algorithms outperform prior schemes in noise rejection.
Demonstrated the importance of mutual coupling awareness in measurement efficiency.
Abstract
Dynamic metasurface antennas (DMAs) are an emerging hybrid-MIMO technology distinguished by an ultrathin form factor, low cost, and low power consumption. In real-world DMA prototypes, mutual coupling (MC) between meta-elements is generally non-negligible; some architectures even deliberately exploit strong MC to enhance wave-domain flexibility. In this paper, we address channel estimation (CE) for DMAs with known MC by formulating it as a tensor-decomposition problem. We develop a generalized block Tucker alternating least squares (BTALS) algorithm, together with specialized variants for cases with known direct and/or feed channel. We also develop a reciprocity-aware bilinear factorization method for the case with known direct channel. We experimentally validate our algorithms using an 18 GHz DMA prototype whose 7 feeds and 96 meta-elements are strongly coupled via a chaotic cavity.…
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Taxonomy
TopicsAntenna Design and Analysis · Advanced Wireless Communication Technologies · Advanced Antenna and Metasurface Technologies
