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MLody -- Deep Learning Generated Polarized Synchrotron Coefficients

2024/09/12 by Jordy Davelaar, Davelaar, Jordy · 1 citation
Materials Science · #Electron and X-Ray Spectroscopy Techniques #FOS: Physical sciences #High Energy Astrophysical Phenomena (astro-ph.HE) #Machine Learning in Materials Science #X-ray Diffraction in Crystallography

paper · pdf · doi:10.48550/arxiv.2409.08007

openalex publication_date 2024/09/12 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

Polarized synchrotron emission is a fundamental process in high-energy astrophysics, particularly in the environments around black holes and pulsars. Accurate modeling of this emission requires precise computation of the emission, absorption, rotation, and conversion coefficients, which are critical for radiative transfer simulations. Traditionally, these coefficients are derived using fit functions based on precomputed ground truth values. However, these fit functions often lack accuracy, particularly in specific plasma conditions not well represented in the datasets used to generate them. In this work, we introduce \tt MLody, a deep neural network designed to compute polarized synchrotron coefficients with high accuracy across a wide range of plasma parameters. We demonstrate \tt MLody's capabilities by integrating it with a radiative transfer code to generate synthetic polarized synchrotron images for an accreting black hole simulation. Our results reveal significant differences, up to a factor of two, in both linear and circular polarization compared to traditional methods. These differences could have important implications for parameter estimation in Event Horizon Telescope observations, suggesting that \tt MLody could enhance the accuracy of future astrophysical analyses.

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