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Myopic deconvolution of adaptive optics images by use of object and point-spread function power spectra

机译:利用目标和点扩展函数功率谱对自适应光学图像进行近视反卷积

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摘要

Adaptive optics systems provide a real-time compensation for atmospheric turbulence. However, the correction is often only partial, and a deconvolution is required for reaching the diffraction limit. The need for a regularized deconvolution is discussed, and such a deconvolution technique is presented. This technique incorporates a positivity constraint and some a priori knowledge of the object (an estimate of its local mean and a model for its power spectral density). This method is then extended to the case of an unknown point-spread function, still taking advantage of similar a priori information on the point-spread function. Deconvolution results are presented for both simulated and experimental data. (C) 1998 Optical Society of America. [References: 48]
机译:自适应光学系统可为大气湍流提供实时补偿。然而,校正通常仅是部分的,并且需要解卷积以达到衍射极限。讨论了对正则反卷积的需求,并提出了这种反卷积技术。该技术结合了正约束和对象的一些先验知识(其局部均值的估计以及其功率谱密度的模型)。然后将该方法扩展到未知点扩展函数的情况,仍然利用点扩展函数上类似的先验信息。给出了反卷积结果,包括模拟和实验数据。 (C)1998年美国眼镜学会。 [参考:48]

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