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Direct, object brightness estimation from atmospheric turbulence degraded images using a new, high-speed, modified phase diversity method

机译:使用新的高速改良相位分集方法从大气湍流退化图像中直接估算物体亮度

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The well known phase diversity technique has long been used as a premier passive imaging method to mitigate the degrading effects of atmospheric turbulence on incoherent optical imagery. Typically, an iterative, slow method is applied that uses the Zernike basis set and 2-D Fourier transforms in the reconstruction process. In this paper, we demonstrate a direct method for estimating the un-aberrated object brightness from phase or phase difference estimates that 1) does not require the use of the Zernike basis set or the intermediate determination of the generalized pupil function, 2) directly determines the optical transfer function without the requirement for an iterative sequence of 2-D Fourier Transforms, 3) provides a more accurate result than the Zernike-based approaches since there are no Zernike series truncation errors, 4) lends itself to fast and parallel implementation, and 5) can use stochastic search methods to rapidly determine simultaneous phases or phase differences required to determine the correct optical transfer function estimate. As such, this new implementation of phase diversity provides potentially faster, more accurate results than previous approaches yet still retains inherent compatibility with the traditional Zernike-based methods. The theoretical underpinnings of this new method along with demonstrative computer simulation results are presented.
机译:长期以来,众所周知的相位分集技术一直被用作主要的被动成像方法,以减轻大气湍流对非相干光学成像的影响。通常,在重建过程中使用迭代缓慢的方法,该方法使用Zernike基集和2D傅里叶变换。在本文中,我们展示了一种从相位或相位差估计中估算未像差的物体亮度的直接方法,该方法是:1)不需要使用Zernike基集或广义瞳孔函数的中间确定,2)直接确定不需要2D傅里叶变换的迭代序列的光学传递函数; 3)比基于Zernike的方法提供了更准确的结果,因为不存在Zernike序列截断错误; 4)使其可以快速并行地实现, 5)可以使用随机搜索方法快速确定确定正确的光学传递函数估计所需的同时相位或相位差。因此,这种新的相位分集实现方式可能比以前的方法提供更快,更准确的结果,但仍保留了与传统基于Zernike的方法的内在兼容性。提出了这种新方法的理论基础,以及演示性的计算机仿真结果。

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