Floquet spectral–spatial modulation using Fourier contours and windowing for multi‑beam control in next‑generation wireless systems

Abstract This paper introduces a unified approach for modeling and synthesizing multi-beam radiation patterns in large, strongly-coupled antenna arrays. The method combines Floquet spectral analysis with Fourier-based contour windowing to efficiently handle both regular and arbitrarily-shaped array layouts. Starting from a single unit cell described by periodic (Floquet) boundary conditions, the electromagnetic response of the entire array is reconstructed via spectral modulation and inverse Fourier transformation. The formulation is solver-agnostic and compatible with numerical methods including the Method of Moments, its equivalent circuit variant, the Finite-Difference Time-Domain, and the Finite Element Method. The proposed technique is particularly suited for emerging systems including 6G communication, Massive MIMO, automotive radars, and IoT networks, where beam-forming, beam-steering, and low-cost computation are critical.

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Publication Details

Journal
Scientific Reports
Published
2026-09-10
DOI
https://doi.org/10.1038/s41598-026-69882-9
Primary Topic
Antenna Design and Optimization
Type
article
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article

Floquet spectral–spatial modulation using Fourier contours and windowing for multi‑beam control in next‑generation wireless systems

Tijeni Delleji, Radhoine Aloui, Sofien Mhatli, Adel Aldalbahi et al.
Scientific Reports
Antenna Design and Optimization
article

Floquet spectral–spatial modulation using Fourier contours and windowing for multi‑beam control in next‑generation wireless systems

Tijeni Delleji, Radhoine Aloui, Sofien Mhatli, Adel Aldalbahi, Hassen Zairi, Ignacio Llamas-Garro, Taoufik Aguili, Bilel Hamdi
article en

Abstract

Abstract This paper introduces a unified approach for modeling and synthesizing multi-beam radiation patterns in large, strongly-coupled antenna arrays. The method combines Floquet spectral analysis with Fourier-based contour windowing to efficiently handle both regular and arbitrarily-shaped array layouts. Starting from a single unit cell described by periodic (Floquet) boundary conditions, the electromagnetic response of the entire array is reconstructed via spectral modulation and inverse Fourier transformation. The formulation is solver-agnostic and compatible with numerical methods including the Method of Moments, its equivalent circuit variant, the Finite-Difference Time-Domain, and the Finite Element Method. The proposed technique is particularly suited for emerging systems including 6G communication, Massive MIMO, automotive radars, and IoT networks, where beam-forming, beam-steering, and low-cost computation are critical.

Scientific Reports
Tunisia Polytechnic School (TN), Centre Tecnologic de Telecomunicacions de Catalunya (ES), National Engineering School of Tunis (TN), Military Hospital of Tunis (TN), National Institute of Applied Science and Technology (TN), King Faisal University (SA), University of Jendouba (TN), Tunis El Manar University (TN)
Openalex Percentile: Top 7%
Antenna Design and Optimization
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Floquet spectral–spatial modulation using Fourier contours and windowing for multi‑beam control in next‑generation wireless systems — Tijeni Delleji, Radhoine Aloui, et al. · Scientific Reports (2026) | TGRS Research Map | TGRS