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XLuminA: An Auto-differentiating Discovery Framework for Super-Resolution Microscopy

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arxiv 2310.08408 v4 pith:VFHIJNDD submitted 2023-10-12 physics.optics

classification physics.optics
keywords xluminamicroscopydiscoverytechniquesadvancedcapabilitiescomputationalconcepts
verification ladder T0 review T1 audit T2 compute T3 formal
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Driven by human ingenuity and creativity, the discovery of super-resolution techniques, which circumvent the classical diffraction limit of light, represent a leap in optical microscopy. However, the vast space encompassing all possible experimental configurations suggests that some powerful concepts and techniques might have not been discovered yet, and might never be with a human-driven direct design approach. Thus, AI-based exploration techniques could provide enormous benefit, by exploring this space in a fast, unbiased way. We introduce XLuminA, an open-source computational framework developed using JAX, which offers enhanced computational speed enabled by its accelerated linear algebra compiler (XLA), just-in-time compilation, and its seamlessly integrated automatic vectorization, auto-differentiation capabilities and GPU compatibility. Remarkably, XLuminA demonstrates a speed-up of 4 orders of magnitude compared to well-established numerical optimization methods. We showcase XLuminA's potential by re-discovering three foundational experiments in advanced microscopy. Ultimately, XLuminA identified a novel experimental blueprint featuring sub-diffraction imaging capabilities. This work constitutes an important step in AI-driven scientific discovery of new concepts in optics and advanced microscopy.

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  1. 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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