Phase Estimation Based Blind Deconvolution for Turbulence Degraded Images

Afeng Yang, Min Lu, Shuhua Teng, Jixiang Sun
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引用次数: 1

Abstract

The resolution of space object images observed by ground-based telescope is greatly limited due to the influence of atmospheric turbulence. An improved blind deconvolution method is presented to enhance the performance of turbulence degraded images restoration. Firstly, a mixed noise model based blind deconvolution cost function is deduced under Gaussian and Poisson noise contamination of measurement. Then, point spread function (PSF) is described by wavefront phase aberrations in the pupil plane according to Fourier Optics theory. In this way, the estimation of PSF is generated from the wavefront phase parameterization instead of pixel domain value. Lastly, the cost function is converted from constrained optimization problem to non-constrained optimization problem by means of parameterization of object image and PSF. Experimental results show that the proposed method can recover high quality image from turbulence degraded images effectively.
基于相位估计的湍流退化图像盲反卷积
由于大气湍流的影响,地面望远镜观测空间物体图像的分辨率受到很大限制。为了提高湍流退化图像的恢复性能,提出了一种改进的盲反卷积方法。首先,在测量的高斯噪声和泊松噪声污染下,推导了基于混合噪声模型的盲反卷积代价函数。然后根据傅里叶光学理论,用瞳孔平面的波前相位像差来描述点扩散函数。这样,由波前相位参数化而不是像素域值来产生PSF的估计。最后,通过对目标图像和PSF的参数化,将代价函数从约束优化问题转化为无约束优化问题。实验结果表明,该方法可以有效地从湍流退化图像中恢复高质量图像。
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