Optimization of Electromagnetic Wave Propagation via Advanced Hybrid Computational Frameworks

Authors

  • Rowan Edwards PhD
  • Adrian Lee Associate Professor
  • Emily King D.Sc

Keywords:

Electromagnetic wave propagation, Finite Element Method, Particle Swarm Optimization, Hybrid computational framework, Telecommunications, Waveguide design, Optimization techniques, Efficiency metrics, Algorithm integration

Abstract

The increasing complexity of electromagnetic systems necessitates innovative optimization techniques to enhance wave propagation efficiency. This study presents a hybrid computational framework integrating Finite Element Method (FEM) and Particle Swarm Optimization (PSO) algorithms, specifically tailored for electromagnetic applications. We employed a dual-phase approach, initially using FEM to solve Maxwell's equations and subsequently applying PSO to optimize the design parameters of waveguides. Our empirical results demonstrated a significant reduction in propagation losses by up to 22% compared to conventional methods, with an accompanying improvement in bandwidth efficiency by 18%. This research elucidates the critical interplay between theoretical modeling and practical implementation, providing a valuable reference point for future advancements in electromagnetic wave technologies.

Author Biographies

Rowan Edwards, PhD

PhD
University of California, Berkeley
Berkeley, CA 94720, USA

Adrian Lee, Associate Professor

Associate Professor
Technische Universität München
Arcisstraße 21, 80333 München, Germany

Emily King, D.Sc

D.Sc
Imperial College London
Exhibition Rd, South Kensington, London SW7 2AZ, UK

References

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Adəm, Q. N. (2025). APPLICATION OF PHYSICS LABORATORIES IN THE ELECTRONIC LEARNING ENVIRONMENT. ARCENG (INTERNATIONAL JOURNAL OF ARCHITECTURE AND ENGINEERING) ISSN: 2822-6895, 5(1), 205-209.

Adem, G. N., & Gachay, Z. S. (2025). METAL-DIELECTRIC-SEMICONDUCTOR TRANSISTORS IN INTEGRAL CIRCUITS. German International Journal of Modern Science/Deutsche Internationale Zeitschrift für Zeitgenössische Wissenschaft, (98).

Published

2025-12-24

Issue

Section

Articles