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STiC -- A multi-atom non-LTE PRD inversion code for full-Stokes solar observations
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STiC -- A multi-atom non-LTE PRD inversion code for full-Stokes solar observations
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The inference of the underlying state of the plasma in the solar chromosphere remains extremely challenging because of the nonlocal character of the observed radiation and plasma conditions in this layer. Inversion methods allow us to derive a model atmosphere that can reproduce the observed spectra by undertaking several physical assumptions. The most advanced approaches involve a depth-stratified model atmosphere described by temperature, line-of-sight velocity, turbulent velocity, the three components of the magnetic field vector, and gas and electron pressure. The parameters of the radiative transfer equation are computed from a solid ground of physical principles. To apply these techniques to spectral lines that sample the chromosphere, NLTE effects must be included in the calculations. We developed a new inversion code STiC to study spectral lines that sample the upper chromosphere. The code is based the RH synthetis code, which we modified to make the inversions faster and more stable. For the first time, STiC facilitates the processing of lines from multiple atoms in non-LTE, also including partial redistribution effects. Furthermore, we include a regularization strategy that allows for model atmospheres with a complex stratification, without introducing artifacts in the reconstructed physical parameters, which are usually manifested in the form of oscillatory behavior. This approach takes steps toward a node-less inversion, in which the value of the physical parameters at each grid point can be considered a free parameter. In this paper we discuss the implementation of the aforementioned techniques, the description of the model atmosphere, and the optimizations that we applied to the code. We carry out some numerical experiments to show the performance of the code and the regularization techniques that we implemented. We made STiC publicly available to the community.
Forward citations
Cited by 2 Pith papers
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The Fe I 4377 {\AA} Line as a Solar Faculae Indicator: Insights from Spectral Ratio Analysis
Spectral ratio analysis of the Fe I 4377 Å line in HARPS-N Sun-as-a-star spectra recovers facular filling factors that track SDO/HMI measurements (Pearson R = 0.587–0.927).
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3D Non-LTE radiation transfer: theory and applications to stars, exoplanets, and kilonovae
A field review of 3D non-LTE radiative transfer argues that 1D LTE treatments of stellar, exoplanet, and kilonova spectra carry systematic abundance biases that 3D NLTE modeling can now remove.
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