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Computational electromagnetics

Computational electromagnetics (CEM), computational electrodynamics or electromagnetic modeling is the process of modeling the interaction of electromagnetic fields with physical objects and the environment using computers.

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Overview

Background

Overview of methods

Maxwell's equations in hyperbolic PDE form

Integral equation solvers

Differential equation solvers

Other methods

Validation

Light scattering codes

Advanced semantic analysis

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Map overview Semantic statistics

Computational electromagnetics

Nodes135
Edges134
Triples75
Avg. degree1.99
Density0.014815
Components1

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Computational electromagnetics

Top relations

related to Further reading · 26
Computational electromagnetics → Allen Taflove, Antennas, Arindam Chatterjee, Artech House Publishers, Chew, Computational Electrodynamics, Efficient Algorithms, Electromagnetics, Fast, Field Computation, Finite Element Methods, Hagness, Harrington, ISBN, Jin, John Volakis, Leo Kempel, Michielssen, Microwave Circuits, Moment Methods
related to Fast multipole method · 10
Computational electromagnetics → Charge, Engheta, Ewald, FMM, Greengard, It, MoM, Rokhlin, The, The FMM
related to Finite-difference frequency-domain · 9
Computational electromagnetics → CEM, Concepts, FDFD, Finite-difference, It, Maxwell’s, On, The, This
related to background · 7
Computational electromagnetics → Also, CEM, Computational, Maxwell's, Poynting, Several, This
related to External links · 4
Computational electromagnetics → Archived, Computational, Open Directory ProjectComputational, Wayback Machine

Important terminology Word statistics

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Important terminology

method equations electromagnetic fdtd time problems scattering computational wave electromagnetics field element finite time-domain maxwell's mom solution using technique analysis

Entity relationships Subject–Predicate–Object triples

SubjectPredicateObjectConfidenceSrc
calculated guided modes in waveguidesinstance ofa huge array of problems are easily handled0.80text
calculating scattering from an objectinstance ofa huge array of problems are easily handled0.80text
calculating transmissioninstance ofa huge array of problems are easily handled0.80text
reflection from photonic crystalsinstance ofa huge array of problems are easily handled0.80text
calculate photonic band diagramsinstance ofa huge array of problems are easily handled0.80text
simulating metamaterialsinstance ofa huge array of problems are easily handled0.80text
and much more.FDFD may be the bestinstance ofa huge array of problems are easily handled0.80text
finite differencesinstance ofwhich is then solved using standard techniques0.80text
etc.In solving partial differential equationsinstance ofwhich is then solved using standard techniques0.80text
the primary challenge is to create an equation which approximates the equation to be studiedinstance ofwhich is then solved using standard techniques0.80text
but which is numerically stableinstance ofwhich is then solved using standard techniques0.80text
meaning that errors in the input datainstance ofwhich is then solved using standard techniques0.80text

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