DeSIRe: Departure coefficient aided Stokes Inversion based on Response functions
B. Ruiz Cobo, C. Quintero Noda, R. Gafeira, H. Uitenbroek, D. Orozco, Su\'arez, E. P\'aez Ma\~n\'a

TL;DR
DeSIRe is a fast, robust inversion code that combines LTE response functions with fixed departure coefficients to efficiently analyze chromospheric spectral lines under NLTE conditions, suitable for large solar data sets.
Contribution
It introduces DeSIRe, a novel inversion method that integrates LTE-based response functions with fixed NLTE departure coefficients, enabling faster analysis of chromospheric spectra.
Findings
DeSIRe significantly reduces inversion computation time.
The code maintains robustness and stability across various conditions.
It is publicly available for the solar research community.
Abstract
Future ground-based telescopes, such as the 4-metre class facilities DKIST and EST, will dramatically improve on current capabilities for simultaneous multi-line polarimetric observations in a wide range of wavelength bands, from the near-ultraviolet to the near-infrared. As a result, there will be an increasing demand for fast diagnostic tools, i.e., inversion codes, that can infer the physical properties of the solar atmosphere from the vast amount of data these observatories will produce. The advent of substantially larger apertures, with the concomitant increase in polarimetric sensitivity, will drive an increased interest in observing chromospheric spectral lines. Accordingly, pertinent inversion codes will need to take account of line formation under general non-local thermodynamic equilibrium (NLTE) conditions. Several currently available codes can already accomplish this, but…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics · Optical Polarization and Ellipsometry
