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自适应光学扫描激光检眼镜轴向分辨率的理论建模与评估

Theoretical modeling and evaluation of the axial resolution of the adaptive optics scanning laser ophthalmoscope.

作者信息

Venkateswaran Krishnakumar, Roorda Austin, Romero-Borja Fernando

机构信息

College of Optometry, University of Houston, Houston, TX 77204-2020, USA.

出版信息

J Biomed Opt. 2004 Jan-Feb;9(1):132-8. doi: 10.1117/1.1627775.

Abstract

We present axial resolution calculated using a mathematical model of the adaptive optics scanning laser ophthalmoscope (AOSLO). The peak intensity and the width of the axial intensity response are computed with the residual Zernike coefficients after the aberrations are corrected using adaptive optics for eight subjects and compared with the axial resolution of a diffraction-limited eye. The AOSLO currently uses a confocal pinhole that is 80 microm, or 3.48 times the width of the Airy disk radius of the collection optics, and projects to 7.41 microm on the retina. For this pinhole, the axial resolution of a diffraction-limited system is 114 microm and the computed axial resolution varies between 120 and 146 microm for the human subjects included in this study. The results of this analysis indicate that to improve axial resolution, it is best to reduce the pinhole size. The resulting reduction in detected light may demand, however, a more sophisticated adaptive optics system. The study also shows that imaging systems with large pinholes are relatively insensitive to misalignment in the lateral positioning of the confocal pinhole. However, when small pinholes are used to maximize resolution, alignment becomes critical.

摘要

我们展示了使用自适应光学扫描激光检眼镜(AOSLO)的数学模型计算出的轴向分辨率。在对八名受试者使用自适应光学技术校正像差后,利用残余泽尼克系数计算轴向强度响应的峰值强度和宽度,并将其与衍射极限眼的轴向分辨率进行比较。目前,AOSLO使用的共焦针孔为80微米,即收集光学系统艾里斑半径宽度的3.48倍,在视网膜上投影为7.41微米。对于这个针孔,衍射极限系统的轴向分辨率为114微米,本研究中纳入的人类受试者计算出的轴向分辨率在120至146微米之间变化。该分析结果表明,为提高轴向分辨率,最好减小针孔尺寸。然而,检测到的光量减少可能需要一个更复杂的自适应光学系统。该研究还表明,具有大针孔的成像系统对共焦针孔横向定位的错位相对不敏感。然而,当使用小针孔以最大化分辨率时,对准就变得至关重要。

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