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D-Flat: A Differentiable Flat-Optics Framework for End-to-End Metasurface Visual Sensor Design

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arxiv 2207.14780 v2 pith:7XMFAAL6 submitted 2022-07-29 physics.optics physics.app-ph

classification physics.opticsphysics.app-ph
keywords d-flatmetasurfacecomputationalframeworkrespectsensordifferentiablemetasurfaces
verification ladder T0 review T1 audit T2 compute T3 formal
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Optical metasurfaces are planar substrates with custom-designed, nanoscale features that selectively modulate incident light with respect to direction, wavelength, and polarization. When coupled with photodetectors and appropriate post-capture processing, they provide a means to create computational imagers and sensors that are exceptionally small and have distinctive capabilities. We introduce D-Flat, a framework in TensorFlow that renders physically-accurate images induced by metasurface optical systems. This framework is fully differentiable with respect to metasurface shape and post-capture computational parameters and allows simultaneous optimization with respect to almost any measure of sensor performance. D-Flat enables simulation of millimeter to centimeter diameter metasurfaces on commodity computers, and it is modular in the sense of accommodating a variety of wave optics models for scattering at the metasurface and for propagation to photosensors. We validate D-Flat against symbolic calculations and previous experimental measurements, and we provide simulations that demonstrate its ability to discover novel computational sensor designs for two applications: single-shot depth sensing and single-shot spatial frequency filtering.

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Cited by 3 Pith papers

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  1. MetaH2: A Snapshot Metasurface HDR Hyperspectral Camera

    eess.IV 2025-07 conditional novelty 6.0 of 10

    A single metasurface snapshot encoding both HDR and hyperspectral data is demonstrated, with simulations showing higher reconstruction accuracy than prior snapshot hyperspectral methods.

  2. Emergence of Classical Dynamics from a Random Matrix Schr\"odinger Model

    quant-ph 2026-03 unverdicted novelty 5.0 of 10

    Newtonian macroscopic motion is derived from the linear Schrödinger equation plus a GUE random Hamiltonian modeling environmental interaction, via state-space random-walk parameters and equivalence classes of indistin...

  3. TorchOptics: An open-source Python library for differentiable Fourier optics simulations

    physics.optics 2024-11 conditional novelty 5.0 of 10

    An open-source PyTorch library that makes Fourier optics simulations differentiable and GPU-accelerated, with support for polarization and arbitrary spatial coherence.

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