Fast Electromagnetic Validations of Large-Scale Digital Coding Metasurfaces Accelerated by Recurrence Rebuild and Retrieval Method
Yu Zhao, Shang Xiang, and Long Li

TL;DR
This paper introduces R3M, a novel method that significantly accelerates electromagnetic validation of large-scale digital coding metasurfaces by leveraging periodicity and hierarchical algorithms, reducing computational costs.
Contribution
The paper proposes R3M, a new approach that transforms DCMs into periodic arrays and uses implicit retrieval and hierarchical pattern exploitation for faster EM validation.
Findings
R3M-HPE achieves higher efficiency than traditional algorithms.
The method maintains high accuracy compared to commercial software.
R3M-HPE reduces storage and CPU time costs significantly.
Abstract
The recurrence rebuild and retrieval method (R3M) is proposed in this paper to accelerate the electromagnetic (EM) validations of large-scale digital coding metasurfaces (DCMs). R3M aims to accelerate the EM validations of DCMs with varied codebooks, which involves the analysis of a group of similar but not identical structures. The method transforms general DCMs to rigorously periodic arrays by replacing each coding unit with the macro unit, which comprises all possible coding states. The system matrix corresponding to the rigorously periodic array is globally shared for DCMs with arbitrary codebooks via implicit retrieval. The discrepancy of the interactions for edge and corner units are precluded by the basis extension of periodic boundaries. Moreover, the hierarchical pattern exploitation (HPE) algorithm is leveraged to efficiently assemble the system matrix for further…
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Taxonomy
TopicsAdvanced Antenna and Metasurface Technologies · Metamaterials and Metasurfaces Applications · Electromagnetic Scattering and Analysis
