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Physics-guided hierarchical neural networks for Maxwell's equations in plasmonic metamaterials

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arxiv 2502.17644 v2 pith:LPC2DUUT submitted 2025-02-24 physics.optics physics.comp-ph

Physics-guided hierarchical neural networks for Maxwell's equations in plasmonic metamaterials

classification physics.optics physics.comp-ph
keywords trainingdataapplicationsdesignequationshierarchicallargelearning
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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While machine learning (ML) has found multiple applications in photonics, traditional "black box" ML models typically require prohibitively large training data sets. Generation of such data, as well as the training processes themselves, consume significant resources, often limiting practical applications of ML. Here we demonstrate that embedding Maxwell's equations into ML design and training significantly reduces the required amount of data and improves the physics-consistency and generalizability of ML models, opening the road to practical ML tools that do not need extremely large training sets. The proposed physics-guided machine learning (PGML) approach is illustrated on the example of predicting complex field distributions within hyperbolic metamaterial photonic funnels, based on multilayered plasmonic-dielectric composites. The hierarchical network design used in this study enables knowledge transfer and points to the emergence of effective medium theories within neural networks.

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