IEEE Trans Image Process. 2016 Feb;25(2):807-17. doi: 10.1109/TIP.2015.2509249. Epub 2015 Dec 17.
We introduce a variational phase retrieval algorithm for the imaging of transparent objects. Our formalism is based on the transport-of-intensity equation (TIE), which relates the phase of an optical field to the variation of its intensity along the direction of propagation. TIE practically requires one to record a set of defocus images to measure the variation of intensity. We first investigate the effect of the defocus distance on the retrieved phase map. Based on our analysis, we propose a weighted phase reconstruction algorithm yielding a phase map that minimizes a convex functional. The method is nonlinear and combines different ranges of spatial frequencies - depending on the defocus value of the measurements - in a regularized fashion. The minimization task is solved iteratively via the alternating-direction method of multipliers. Our simulations outperform commonly used linear and nonlinear TIE solvers. We also illustrate and validate our method on real microscopy data of HeLa cells.
我们提出了一种用于透明物体成像的变分相位恢复算法。我们的形式理论基于光强传输方程(TIE),该方程将光场的相位与沿传播方向的强度变化联系起来。TIE 实际上需要记录一组离焦图像来测量强度的变化。我们首先研究了离焦距离对恢复相位图的影响。基于我们的分析,我们提出了一种加权相位重建算法,生成一个最小化凸函数的相位图。该方法是非线性的,并且以正则化的方式结合了不同范围的空间频率 - 取决于测量的离焦值。最小化任务通过交替方向乘子法迭代求解。我们的模拟结果优于常用的线性和非线性 TIE 求解器。我们还在 HeLa 细胞的实际显微镜数据上进行了演示和验证。