2024
DOI: 10.1063/5.0179457
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Physics-agnostic inverse design using transfer matrices

Nathaniel Morrison,
Shuaiwei Pan,
Eric Y. Ma

Abstract: Inverse design is an application of machine learning to device design, giving the computer maximal latitude in generating novel structures, learning from their performance, and optimizing them to suit the designer’s needs. Gradient-based optimizers, augmented by the adjoint method to efficiently compute the gradient, are particularly attractive for this approach and have proven highly successful with finite-element and finite-difference physics simulators. Here, we extend adjoint optimization to the transfer m… Show more

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