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A blind deblurring and image decomposition approach for astronomical image restoration

机译:用于天文图像恢复的盲去模糊和图像分解方法

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With the progress of adaptive optics systems, ground-based telescopes acquire images with improved resolutions. However, compensation for atmospheric turbulence is still partial, which leaves good scope for digital restoration techniques to recover fine details in the images. A blind image deblurring algorithm for a single long-exposure image is proposed, which is an instance of maximum-a-posteriori estimation posed as constrained non-convex optimization problem. A view of sky contains mainly two types of sources: point-like and smooth extended sources. The algorithm takes into account this fact explicitly by imposing different priors on these components, and recovers two separate maps for them. Moreover, an appropriate prior on the blur kernel is also considered. The resulting optimization problem is solved by alternating minimization. The initial experimental results on synthetically corrupted images are promising, the algorithm is able to restore the fine details in the image, and recover the point spread function.
机译:随着自适应光学系统的发展,地基望远镜可获取分辨率更高的图像。但是,对大气湍流的补偿仍然是局部的,这为数字恢复技术留出了很好的空间,可用于恢复图像中的精细细节。提出了一种针对单张长时间曝光图像的盲图像去模糊算法,该算法是最大后验估计问题的一个例子,它被约束为非凸优化问题。天空视图主要包含两种类型的源:点状源和平滑扩展源。该算法通过在这些组件上施加不同的先验来明确考虑到这一事实,并为它们恢复两个单独的映射。此外,还考虑了模糊内核的适当先验。通过交替最小化解决了最终的优化问题。在合成损坏的图像上的初步实验结果是有希望的,该算法能够恢复图像中的精细细节,并恢复点扩散功能。

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