Improved SOT (Hinode mission) high resolution solar imaging observations
Hadis Goodarzi, Serge Koutchmy, Ali Adjabshirizadeh

TL;DR
This paper enhances high-resolution solar imaging from the Hinode spacecraft by analyzing and correcting for instrumental effects, leading to improved detail in solar features and dynamic phenomena visualization.
Contribution
It introduces a new PSF model combining Gaussian and Lorentzian functions and applies a Max-likelihood deconvolution to improve solar images from Hinode.
Findings
Enhanced resolution of solar granulation and sunspots.
First observation of a new feature at the solar limb.
Successful deconvolution of a 45-minute sequence of sunspot images.
Abstract
We consider the best today available observations of the Sun free of turbulent Earth atmospheric effects, taken with the Solar Optical Telescope (SOT) onboard the Hinode spacecraft. Both the instrumental smearing and the observed stray light are analyzed in order to improve the resolution. The Point Spread Function (PSF) corresponding to the blue continuum Broadband Filter Imager (BFI) near 450 nm is deduced by analyzing i/ the limb of the Sun and ii/ images taken during the transit of the planet Venus in 2012. A combination of Gaussian and Lorentzian functions is selected to construct a PSF in order to remove both smearing due to the instrumental diffraction effects (PSF core) and the large-angle stray light due to the spiders and central obscuration (wings of the PSF) that are responsible for the parasitic stray light. A Max-likelihood deconvolution procedure based on an optimum…
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