School of Physics, University of Melbourne, Victoria 3010, Australia.
Ultramicroscopy. 2011 Jun;111(7):777-81. doi: 10.1016/j.ultramic.2010.10.003. Epub 2010 Oct 23.
We experimentally implement a direct, non-iterative method for recovering the complex wave in the exit-surface plane of a coherently illuminated object. The form of illumination is subject to certain conditions. By satisfying these conditions, the complex exit-surface wave is directly recovered from a single far-field intensity pattern, by solving a set of linear equations. These linear equations, whose coefficients depend on the incident illumination, are obtained by analyzing the autocorrelation function of the exit-surface wave. This autocorrelation is constructed by taking the inverse Fourier transform of the diffraction pattern. We introduce a preconditioning step, for the system of linear equations, which improves the robustness of the method to noise. While the present experimental proof of concept has been performed using a visible-light laser, the method is applicable to diffractive imaging using coherent X-ray and electron sources.
我们实验实现了一种直接、非迭代的方法,用于恢复相干照明物体出射面平面上的复波。照明的形式受某些条件的限制。通过满足这些条件,可以通过求解一组线性方程组,从单个远场强度模式直接恢复复出面波。这些线性方程组的系数取决于入射照明,通过分析出射面波的自相关函数得到。该自相关函数通过对衍射图样进行傅里叶逆变换构建。我们为线性方程组引入了一个预处理步骤,这提高了该方法对噪声的鲁棒性。虽然目前的实验概念验证是使用可见光激光进行的,但该方法适用于使用相干 X 射线和电子源的衍射成像。