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Fast PSF estimation under anisoplanatic conditions

机译:在运动条件下快速PSF估计

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摘要

Correction of atmospheric turbulence effects on images involves mainly mitigation of distortion ("de-warping") and removal of image blur. One of the approaches for correcting atmospheric blurring involves the use of deconvolution. The ill-posed nature of the problem and the number of unknowns makes this problem hard to solve. This is why methods like blind deconvolution can be too time-consuming for real-time application. Additionally, an optimal parameter input is also often required (which requires interaction from an operator). Our ultimate goal is to perform an autonomous, software-based turbulence correction in real-time. This requires both very fast point-spread function (PSF) estimation and a deconvolution method. In this work we study new efficient ways to describe and estimate the PSF in anisoplanatic conditions.
机译:对图像的大气湍流效应的校正涉及主要减轻失真(“失败”)和去除图像模糊。校正大气模糊的方法之一包括使用去卷积。问题的不良性质和未知数的数量使这个问题很难解决。这就是为什么盲目解压缩等方法对于实时应用可能太耗时。另外,通常需要最佳参数输入(这需要从运营商的交互)。我们的最终目标是实时地执行基于自主的软件的湍流校正。这需要非常快速的点扩展功能(PSF)估计和解构方法。在这项工作中,我们研究了新的高效方法来描述和估算临时条件下的PSF。

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