Adaptive multi-line fitting for stable line-core intensity and Doppler velocity

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Main Authors: Jafarzadeh, Shahin, Jess, David B., Stangalini, Marco, Keys, Peter H., Chambers, Glen, Grant, Samuel D. T., Berretti, Michele, Duckenfield, Timothy J.
Format: Preprint
Published: 2026
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author Jafarzadeh, Shahin
Jess, David B.
Stangalini, Marco
Keys, Peter H.
Chambers, Glen
Grant, Samuel D. T.
Berretti, Michele
Duckenfield, Timothy J.
author_facet Jafarzadeh, Shahin
Jess, David B.
Stangalini, Marco
Keys, Peter H.
Chambers, Glen
Grant, Samuel D. T.
Berretti, Michele
Duckenfield, Timothy J.
contents Next-generation solar spectrographs increasingly record dense wavelength windows in which tens to hundreds of spectral lines are sampled at each spatial location and time step. This expands the scope for multi-line, multi-height diagnostics of magnetohydrodynamic motions, but also raises a practical challenge: deriving stable line-core intensity and line-of-sight velocity time series when profiles evolve rapidly, become asymmetric, blend, or develop multi-lobed cores. Common fast estimators can perform well for simple, isolated absorption lines, yet can intermittently misidentify the core in crowded or morphologically complex cases. Even infrequent mis-tracking can leave step-like artefacts that redistribute power and bias spectral, phase, and coherence measures used in wave and dynamics analyses. We introduce LineFit, a fully reproducible adaptive multi-line fitting approach tailored to dense-window spectroscopy. LineFit models each line locally with bounded non-linear least-squares fits to a Voigt-family profile, including an asymmetric-Voigt option to accommodate unequal wing broadening, and incorporates close-pair ownership control together with conservative, per-line window adaptation and split-core-aware handling. Using a synthetic time series with unambiguous ground truth, we benchmark LineFit against four widely used fast baselines and assess both instantaneous centre errors and downstream time-series diagnostics. Several fast methods remain competitive for many lines, whereas LineFit is most robust in key stress cases involving intermittently split-core profiles and correspondingly yields power spectra that agree most closely with the truth. We also demonstrate a proof-of-principle that benchmarks hybrid acceleration of the LineFit software via supervised emulation, offering at least three orders-of-magnitude improvement in processing time.
format Preprint
id arxiv_https___arxiv_org_abs_2605_20861
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Adaptive multi-line fitting for stable line-core intensity and Doppler velocity
Jafarzadeh, Shahin
Jess, David B.
Stangalini, Marco
Keys, Peter H.
Chambers, Glen
Grant, Samuel D. T.
Berretti, Michele
Duckenfield, Timothy J.
Solar and Stellar Astrophysics
Instrumentation and Methods for Astrophysics
Next-generation solar spectrographs increasingly record dense wavelength windows in which tens to hundreds of spectral lines are sampled at each spatial location and time step. This expands the scope for multi-line, multi-height diagnostics of magnetohydrodynamic motions, but also raises a practical challenge: deriving stable line-core intensity and line-of-sight velocity time series when profiles evolve rapidly, become asymmetric, blend, or develop multi-lobed cores. Common fast estimators can perform well for simple, isolated absorption lines, yet can intermittently misidentify the core in crowded or morphologically complex cases. Even infrequent mis-tracking can leave step-like artefacts that redistribute power and bias spectral, phase, and coherence measures used in wave and dynamics analyses. We introduce LineFit, a fully reproducible adaptive multi-line fitting approach tailored to dense-window spectroscopy. LineFit models each line locally with bounded non-linear least-squares fits to a Voigt-family profile, including an asymmetric-Voigt option to accommodate unequal wing broadening, and incorporates close-pair ownership control together with conservative, per-line window adaptation and split-core-aware handling. Using a synthetic time series with unambiguous ground truth, we benchmark LineFit against four widely used fast baselines and assess both instantaneous centre errors and downstream time-series diagnostics. Several fast methods remain competitive for many lines, whereas LineFit is most robust in key stress cases involving intermittently split-core profiles and correspondingly yields power spectra that agree most closely with the truth. We also demonstrate a proof-of-principle that benchmarks hybrid acceleration of the LineFit software via supervised emulation, offering at least three orders-of-magnitude improvement in processing time.
title Adaptive multi-line fitting for stable line-core intensity and Doppler velocity
topic Solar and Stellar Astrophysics
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2605.20861