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A study of the capabilities for inferring atmospheric information from high-spatial-resolution simulations

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arxiv 2306.01422 v1 pith:TL633OUM submitted 2023-06-02 astro-ph.SR astro-ph.IM

classification astro-ph.SRastro-ph.IM
keywords noiseaccuracyresultstimes10whenalmostatmosphericclass
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abstract

In this work, we study the accuracy that can be achieved when inferring the atmospheric information from realistic numerical magneto-hydrodynamic simulations that reproduce the spatial resolution we will obtain with future observations made by the 4m class telescopes DKIST and EST. We first study multiple inversion configurations using the SIR code and the Fe I transitions at 630 nm until we obtain minor differences between the input and the inferred atmosphere in a wide range of heights. Also, we examine how the inversion accuracy depends on the noise level of the Stokes profiles. The results indicate that when the majority of the inverted pixels come from strongly magnetised areas, there are almost no restrictions in terms of the noise, obtaining good results for noise amplitudes up to 1$\times10^{-3}$ of $I_c$. At the same time, the situation is different for observations where the dominant magnetic structures are weak, and noise restraints are more demanding. Moreover, we find that the accuracy of the fits is almost the same as that obtained without noise when the noise levels are on the order of 1$\times10^{-4}$of $I_c$. We, therefore, advise aiming for noise values on the order of or lower than 5$\times10^{-4}$ of $I_c$ if observers seek reliable interpretations of the results for the magnetic field vector reliably. We expect those noise levels to be achievable by next-generation 4m class telescopes thanks to an optimised polarisation calibration and the large collecting area of the primary mirror.

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

  1. Application of Deep Learning to the Classification of Stokes Profiles: From the Quiet Sun to Sunspots

    astro-ph.SR 2025-05 conditional novelty 6.0 of 10

    A supervised neural network classifier for solar Stokes V profile shapes is introduced, tested on DKIST, Hinode, GREGOR, and simulations, and used for the first statistical DKIST/ViSP quiet Sun inversion analysis.

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