Analysing the highly irregular boundaries of solar pores
T. J. Duckenfield, D. B. Jess, S. Jafarzadeh, L. A. C. A. Schiavo, S. S. A. Silva, S. D. T. Grant

TL;DR
This paper introduces a new framework using convex hulls to analyze irregular solar pore boundaries for wave mode detection, demonstrating its effectiveness with high-cadence solar observations.
Contribution
The study presents a novel boundary approximation method for irregular pores and applies modal analysis to identify wave modes in solar pores.
Findings
Fundamental sausage and kink modes are reliably detected.
Higher-order fluting modes are degraded by boundary irregularity.
Sausage-like modes dominate variance and show upward frequency shifts.
Abstract
Solar pores possess irregular and evolving boundaries that are often far from the ideal circular flux tubes assumed in many magnetohydrodynamic (MHD) oscillation models. To tackle this irregularity in a consistent way for wave analysis, we introduce a framework that employs the convex hull of the pore boundary - derived from intensity minimum error thresholding - as the domain to perform further analysis. Using the modal assurance criterion, we find the range of pore shapes for which this approximation is valid. We demonstrate the usefulness of this framework by applying it to multi-height, high-cadence observations (4170 angstrom continuum, G-band, Na~\textsc{i}, and Ca~\textsc{ii}~K) of a solar pore, and apply Proper Orthogonal Decomposition of the convex hull to determine wave modes. The fundamental sausage () and kink () mode is found to remain reliable, while higher-order…
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