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An efficient computational approach for multiframe blind deconvolution

机译:多帧盲反卷积的有效计算方法

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摘要

Obtaining high resolution images of space objects from ground based telescopes involves using a combination of sophisticated hardware and computational post-processing techniques. An important, and often highly effective, computational post processing tool is multiframe blind deconvolution (MFBD). Mathematically, MFBD is modeled as a nonlinear inverse problem that can be solved using a flexible, variable projection optimization approach. In this paper we consider MFBD problems that are parameterized by a large number of variables. The formulas required for efficient implementation are carefully derived using the spectral decomposition and by exploiting properties of conjugate symmetric vectors. In addition, a new approach is proposed to provide a mathematical decoupling of the optimization problem, leading to a block structure of the Jacobian matrix. An application in astronomical imaging is considered, and numerical experiments illustrate the effectiveness of our approach.
机译:从地面望远镜获得空间物体的高分辨率图像涉及结合使用复杂的硬件和计算后处理技术。一种重要且通常非常高效的计算后处理工具是多帧盲反卷积(MFBD)。在数学上,MFBD被建模为非线性逆问题,可以使用灵活的可变投影优化方法来解决。在本文中,我们考虑了由大量变量参数化的MFBD问题。有效执行所需的公式是使用频谱分解并利用共轭对称向量的性质精心得出的。另外,提出了一种新方法来提供优化问题的数学解耦,从而导致雅可比矩阵的块结构。考虑了在天文成像中的应用,数值实验说明了我们方法的有效性。

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