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A Time-Evolving 3D Method Dedicated to the Reconstruction of Solar Plumes and Results Using Extreme Ultraviolet Data

机译:不断发展的3D方法,致力于利用极端紫外线数据重建太阳羽和结果

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摘要

An important issue in the tomographic reconstruction of the solar poles is the relatively rapid evolution of the polar plumes. We demonstrate that it is possible to take into account this temporal evolution in the reconstruction. The difficulty of this problem comes from the fact that we want a four-dimensional reconstruction (three spatial dimensions plus time) whereas we only have three-dimensional data (two-dimensional images plus time). To overcome this difficulty, we introduce a model that describes polar plumes as stationary objects whose intensity varies homogeneously with time. This assumption can be physically justified if one accepts the stability of the magnetic structure. This model leads to a bilinear inverse problem. We describe how to extend linear inversion methods to these kinds of problems. Studies of simulations show the reliability of our method. Results for SOHO/EIT data show that we can estimate the temporal evolution of polar plumes to improve the reconstruction of the solar poles from only one point of view. We expect further improvements from STEREO/EUVI data when the two probes will be separated by about 60°.
机译:太阳极的层析成像重建中的一个重要问题是极羽的相对快速演化。我们证明,有可能在重建中考虑到这种时间演变。这个问题的困难来自这样一个事实,我们想要进行四维重构(三个空间维加时间),而我们只有三维数据(二维图像加时间)。为了克服这个困难,我们引入了一个模型,该模型将极羽描述为强度随时间均匀变化的静止物体。如果人们接受了磁性结构的稳定性,则该假设在物理上是合理的。该模型导致双线性反问题。我们描述了如何将线性反演方法扩展到这类问题。仿真研究表明了我们方法的可靠性。 SOHO / EIT数据的结果表明,仅从一个角度来看,我们就可以估算出极羽的时间演变,从而改善了太阳极的重建。当两个探头分开约60°时,我们期望STEREO / EUVI数据有进一步的改善。

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