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用于强度传输定量相显微镜的最佳照明模式。

Optimal illumination pattern for transport-of-intensity quantitative phase microscopy.

作者信息

Li Jiaji, Chen Qian, Sun Jiasong, Zhang Jialin, Pan Xiangpeng, Zuo Chao

出版信息

Opt Express. 2018 Oct 15;26(21):27599-27614. doi: 10.1364/OE.26.027599.

DOI:10.1364/OE.26.027599
PMID:30469823
Abstract

The transport-of-intensity equation (TIE) is a well-established non-interferometric phase retrieval approach, which enables quantitative phase imaging (QPI) of transparent sample simply by measuring the intensities at multiple axially displaced planes. Nevertheless, it still suffers from two fundamentally limitations. First, it is quite susceptible to low-frequency errors (such as "cloudy" artifacts), which results from the poor contrast of the phase transfer function (PTF) near the zero frequency. Second, the reconstructed phase tends to blur under spatially low-coherent illumination, especially when the defocus distance is beyond the near Fresnel region. Recent studies have shown that the shape of the illumination aperture has a significant impact on the resolution and phase reconstruction quality, and by simply replacing the conventional circular illumination aperture with an annular one, these two limitations can be addressed, or at least significantly alleviated. However, the annular aperture was previously empirically designed based on intuitive criteria related to the shape of PTF, which does not guarantee optimality. In this work, we optimize the illumination pattern to maximize TIE's performance based on a combined quantitative criterion for evaluating the "goodness" of an aperture. In order to make the size of the solution search space tractable, we restrict our attention to binary-coded axis-symmetric illumination patterns only, which are easier to implement and can generate isotropic TIE PTFs. We test the obtained optimal illumination by imaging both a phase resolution target and HeLa cells based on a small-pitch LED array, suggesting superior performance over other suboptimal patterns in terms of both signal-to-noise ratio (SNR) and spatial resolution.

摘要

强度传输方程(TIE)是一种成熟的非干涉相位恢复方法,它只需测量多个轴向位移平面上的强度,就能对透明样品进行定量相位成像(QPI)。然而,它仍然存在两个根本限制。首先,它极易受到低频误差(如“模糊”伪影)的影响,这是由零频率附近相位传递函数(PTF)的对比度不佳导致的。其次,在空间低相干照明下,重建相位往往会模糊,尤其是当离焦距离超出近菲涅耳区域时。最近的研究表明,照明孔径的形状对分辨率和相位重建质量有显著影响,通过简单地用环形孔径代替传统的圆形照明孔径,这两个限制可以得到解决,或者至少得到显著缓解。然而,环形孔径以前是基于与PTF形状相关的直观标准进行经验设计的,这并不能保证最优性。在这项工作中,我们基于一个用于评估孔径“优劣”的综合定量标准,优化照明模式以最大化TIE的性能。为了使解搜索空间的大小易于处理,我们仅将注意力限制在二进制编码的轴对称照明模式上,这种模式更易于实现,并且可以生成各向同性的TIE PTF。我们基于小间距LED阵列对相位分辨率目标和HeLa细胞进行成像,测试获得的最优照明,结果表明在信噪比(SNR)和空间分辨率方面,其性能优于其他次优模式。

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