The Quasi-Radial Field-line Tracing (QRaFT): an Adaptive Segmentation of the Open-Flux Solar Corona

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Main Authors: Uritsky, Vadim M., Rura, Christopher E., Downs, Cooper, Jones, Shaela I., Arge, Charles Nickolos, Alzate, Nathalia
Format: Preprint
Published: 2025
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author Uritsky, Vadim M.
Rura, Christopher E.
Downs, Cooper
Jones, Shaela I.
Arge, Charles Nickolos
Alzate, Nathalia
author_facet Uritsky, Vadim M.
Rura, Christopher E.
Downs, Cooper
Jones, Shaela I.
Arge, Charles Nickolos
Alzate, Nathalia
contents Optical observations of solar corona provide key information on its magnetic geometry. The large-scale open field of the corona plays an important role in shaping the ambient solar wind and constraining the propagation dynamics of the embedded structures, such as interplanetary coronal mass ejections. Rigorous analysis of the open-flux coronal regions based on coronagraph images can be quite challenging because of the depleted plasma density resulting in low signal-to-noise ratios. In this paper, we present an in-depth description of a new image segmentation methodology, the Quasi-Radial Field-line Tracing (QRaFT), enabling a detection of field-aligned optical coronal features approximating the orientation of the steady-state open magnetic field. The methodology is tested using synthetic coronagraph images generated by a three-dimensional magnetohydrodynamic model. The results of the numerical tests indicate that the extracted optical features are aligned within $\sim 4-7$ degrees with the local magnetic field in the underlying numerical solution. We also demonstrate the performance of the method on real-life coronal images obtained from a space-borne coronagraph and a ground-based camera. We argue that QRaFT outputs contain valuable empirical information about the global steady-state morphology of the corona which could help improving the accuracy of coronal and solar wind models and space weather forecasts.
format Preprint
id arxiv_https___arxiv_org_abs_2506_14894
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Quasi-Radial Field-line Tracing (QRaFT): an Adaptive Segmentation of the Open-Flux Solar Corona
Uritsky, Vadim M.
Rura, Christopher E.
Downs, Cooper
Jones, Shaela I.
Arge, Charles Nickolos
Alzate, Nathalia
Solar and Stellar Astrophysics
Data Analysis, Statistics and Probability
Plasma Physics
Space Physics
Optical observations of solar corona provide key information on its magnetic geometry. The large-scale open field of the corona plays an important role in shaping the ambient solar wind and constraining the propagation dynamics of the embedded structures, such as interplanetary coronal mass ejections. Rigorous analysis of the open-flux coronal regions based on coronagraph images can be quite challenging because of the depleted plasma density resulting in low signal-to-noise ratios. In this paper, we present an in-depth description of a new image segmentation methodology, the Quasi-Radial Field-line Tracing (QRaFT), enabling a detection of field-aligned optical coronal features approximating the orientation of the steady-state open magnetic field. The methodology is tested using synthetic coronagraph images generated by a three-dimensional magnetohydrodynamic model. The results of the numerical tests indicate that the extracted optical features are aligned within $\sim 4-7$ degrees with the local magnetic field in the underlying numerical solution. We also demonstrate the performance of the method on real-life coronal images obtained from a space-borne coronagraph and a ground-based camera. We argue that QRaFT outputs contain valuable empirical information about the global steady-state morphology of the corona which could help improving the accuracy of coronal and solar wind models and space weather forecasts.
title The Quasi-Radial Field-line Tracing (QRaFT): an Adaptive Segmentation of the Open-Flux Solar Corona
topic Solar and Stellar Astrophysics
Data Analysis, Statistics and Probability
Plasma Physics
Space Physics
url https://arxiv.org/abs/2506.14894