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Re-Envisioning Numerical Information Field Theory (NIFTy.re): A Library for Gaussian Processes and Variational Inference

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arxiv 2402.16683 v2 pith:RC6RUG6G submitted 2024-02-26 astro-ph.IM cs.LGstat.ML

classification astro-ph.IMcs.LGstat.ML
keywords niftyinferenceimagingrewriteacceleratesalreadyappliedastrophysics
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Imaging is the process of transforming noisy, incomplete data into a space that humans can interpret. NIFTy is a Bayesian framework for imaging and has already successfully been applied to many fields in astrophysics. Previous design decisions held the performance and the development of methods in NIFTy back. We present a rewrite of NIFTy, coined NIFTy.re, which reworks the modeling principle, extends the inference strategies, and outsources much of the heavy lifting to JAX. The rewrite dramatically accelerates models written in NIFTy, lays the foundation for new types of inference machineries, improves maintainability, and enables interoperability between NIFTy and the JAX machine learning ecosystem.

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Cited by 2 Pith papers

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  1. Milky Way Atlas: A radial-velocity-resolved, three-dimensional map of H I within 1.25 kpc

    astro-ph.GA 2026-07 unverdicted novelty 6.0 of 10

    A Bayesian inference method combining HI4PI radio data with Gaia-based 3D dust maps reconstructs the 3D density, velocity, and line-width of local atomic hydrogen within 1.25 kpc, validated by synthetic tests and inde...

  2. Information Field Theory with JAX infers Air Shower Electric Currents from Antenna Signal Traces

    astro-ph.IM 2025-07 conditional novelty 6.0 of 10

    An IFT+JAX Bayesian pipeline infers the space-time current-density field of an air shower from synthetic antenna signals, reproducing the main structure of the simulated shower.

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