Multiscale dynamics of solar magnetic structures
Vadim M. Uritsky, Joseph M. Davila

TL;DR
This paper introduces a novel multiscale analysis method for solar magnetic structures, revealing complex magnetic behaviors and their potential role in energy release and solar flares.
Contribution
It presents a new multiscale approach combining event detection and correlation analysis to study solar magnetic flux dynamics across different conditions.
Findings
Detection of complex magnetic network in quiet Sun
Identification of non-potential magnetic structures in active regions
Correlation between magnetic cancelation and solar flares
Abstract
Multiscale topological complexity of solar magnetic field is among the primary factors controlling energy release in the corona, including associated processes in the photospheric and chromospheric boundaries. We present a new approach for analyzing multiscale behavior of the photospheric magnetic flux underlying this dynamics as depicted by a sequence of high-resolution solar magnetograms. The approach involves two basic processing steps: (1) identification of timing and location of magnetic flux origin and demise events (as defined by DeForest et al., 2007) by tracking spatiotemporal evolution of unipolar and bipolar photospheric regions, and (2) analysis of collective behavior of the detected magnetic events using a generalized version of Grassberger - Procaccia correlation integral algorithm. The scale-free nature of the developed algorithms makes it possible to characterize the…
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