A perfectly matched layer for the absorption of electromagnetic waves
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Summary
Numerical experiments and numerical comparisons show that the PML technique works better than the others in all cases; using it allows to obtain a higher accuracy in some problems and a release of computational requirements in some others.
- Type
- article
- Published
- 1994-10-01
- Cited by
- 10,565
- References
- 10
- OpenAlex
- https://openalex.org/W2003017040
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:61917466
Keywords
Perfectly matched layer, Finite-difference time-domain method, Reflection (computer programming), Free space, Electromagnetic radiation
References
- A comparative study of absorbing boundary conditions
- THREDE: A Free-Field EMP Coupling and Scattering Code
- Absorbing Boundary Conditions for the Finite-Difference Approximation of the Time-Domain Electromagnetic-Field Equations
- Absorbing boundary conditions for the numerical simulation of waves
- Review of the formulation and applications of the finite-difference time-domain method for numerical modeling of electromagnetic wave interactions with arbitrary structures
- Numerical absorbing boundary conditions for the wave equation
- A Novel Method to Analyze Electromagnetic Scattering of Complex Objects
- Total-Field versus Scattered-Field Finite-Difference Codes: A Comparative Assessment
- Transient Currents Induced on a Metallic Body of Revolution by an Electromagnetic Pulse
- Numerical Solution of Initial Boundary Value Problems Involving Maxwell’s Equations in Isotropic Media
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- Perfectly matched layers as nonlinear coordinate transforms: a generalized formalization.
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- Simulation of acoustic wave propagation in dispersive media with relaxation losses by using FDTD method with PML absorbing boundary condition
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