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End-to-End Nanophotonic Inverse Design for Imaging and Polarimetry

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arxiv 2006.09145 v2 pith:TIUMFMD6 submitted 2020-06-16 physics.optics eess.IVphysics.app-phphysics.comp-ph

classification physics.opticseess.IVphysics.app-phphysics.comp-ph
keywords fulleitherend-to-endimaginginverseinverse-scatteringlightnoise
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

By co-designing a meta-optical front end in conjunction with an image-processing back end, we demonstrate noise sensitivity and compactness substantially superior to either an optics-only or a computation-only approach, illustrated by two examples: subwavelength imaging and reconstruction of the full polarization coherence matrices of multiple light sources. Our end-to-end inverse designs couple the solution of the full Maxwell equations---exploiting all aspects of wave physics arising in subwavelength scatterers---with inverse-scattering algorithms in a single large-scale optimization involving $\gtrsim 10^4$ degrees of freedom. The resulting structures scatter light in a way that is radically different from either a conventional lens or a random microstructure, and suppress the noise sensitivity of the inverse-scattering computation by several orders of magnitude. Incorporating the full wave physics is especially crucial for detecting spectral and polarization information that is discarded by geometric optics and scalar diffraction theory.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Computationally Efficient Information-Driven Optical Design with Interchanging Optimization

    eess.IV 2025-07 conditional novelty 4.0 of 10

    IDEAL-IO decouples density estimation from optical optimization to make information-theoretic imaging design practical, cutting runtime and memory by up to 6x while enabling more expressive density models.

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