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利用体散斑场的序列强度测量进行完整波前重建。

Complete wavefront reconstruction using sequential intensity measurements of a volume speckle field.

作者信息

Almoro Percival, Pedrini Giancarlo, Osten Wolfgang

机构信息

Institut für Technische Optik, Universität Stuttgart, Stuttgart, Germany.

出版信息

Appl Opt. 2006 Dec 1;45(34):8596-605. doi: 10.1364/ao.45.008596.

Abstract

The recording of the volume speckle field from an object at different planes combined with the wave propagation equation allows the reconstruction of the wavefront phase and amplitude without requiring a reference wave. The main advantage of this single-beam multiple-intensity reconstruction (SBMIR) technique is the simple experimental setup because no reference wave is required as in the case of holography. The phase retrieval technique is applied to the investigation of diffusely transmitting and reflecting objects. The effects of different parameters on the quality of reconstructions are investigated by simulation and experiment. Significant enhancements of the reconstructions are observed when the number of intensity measurements is 15 or more and the sequential measurement distance is 0.5 mm or larger. Performing two iterations during the reconstruction process using the calculated phase also leads to better reconstruction. The results from computer simulations confirm the experiments. Analysis of transverse and longitudinal intensity distributions of a volume speckle field for the SBMIR technique is presented. Enhancing the resolution method by shifting the camera a distance of a half-pixel in the lateral direction improves the sampling of speckle patterns and leads to better quality reconstructions. This allows the possibility of recording wave fields from larger test objects.

摘要

记录物体在不同平面的体散斑场,并结合波动传播方程,无需参考波即可重建波前相位和振幅。这种单光束多强度重建(SBMIR)技术的主要优点是实验设置简单,因为与全息术不同,它不需要参考波。相位检索技术被应用于对漫透射和反射物体的研究。通过模拟和实验研究了不同参数对重建质量的影响。当强度测量次数为15次或更多且顺序测量距离为0.5毫米或更大时,观察到重建有显著增强。在重建过程中使用计算出的相位进行两次迭代也会得到更好的重建效果。计算机模拟结果证实了实验结果。给出了SBMIR技术体散斑场横向和纵向强度分布的分析。通过在横向方向将相机移动半个像素的距离来提高分辨率的方法改善了散斑图案的采样,并导致更高质量的重建。这使得从更大的测试物体记录波场成为可能。

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