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Adaptive optics with a micromachined membrane deformable mirror for high resolution retinal imaging.

机译:带有微机械膜可变形镜的自适应光学器件,用于高分辨率视网膜成像。

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摘要

The resolution of conventional retinal imaging technologies is limited by the optics of the human eye. In this dissertation, the aberrations of the eye and their compensation techniques are investigated for the purpose of high-resolution retinal imaging. Both computer modeling and adaptive optics experiments with the novel micromachined membrane deformable mirror (MMDM) device are performed. First, a new aspherical computer eye model is developed to study the aberrations of the eye and their effects on retinal imaging. The aberrations and point-spread functions of the eye are calculated and found to be pupil size dependent and space-variant. The aberration compensation is modeled using customized lens design techniques showing that high-resolution retinal images can be obtained with a dilated pupil through aberration compensation. Due to the space-variant nature and the individual variations of the eye aberrations, adaptive optics techniques are necessary for dynamic aberration compensation. Thus, an experimental adaptive optics retinal imaging system, based on a novel, low-cost, and compact MMDM, is constructed to investigate adaptive optics techniques for eye aberration compensation, where the aberrations are measured using a Hartmann-Shack wavefront sensor. Due to the difficulties in controlling the new MMDM device, a novel control algorithm is developed to generate the desired wavefront for aberration compensation of the eye. The MMDM is characterized and a closed-loop system algorithm is developed for eye aberration compensation in real-time. The system is tested with an artificial eye, showing that it can effectively compensate for low-order and to a certain extent for high-order aberrations of the eye. A diffraction-limited resolution is achieved when the aberrations are within the working range of the MMDM. Aberration compensation and retinal imaging experiments are also performed with real eyes, showing an improved imaging resolution. In addition, a preliminary investigation into a complementary adaptive optics approach of using image deconvolution techniques is also conducted to improve retinal image resolution when the aberrations of the eye can not be completely compensated for by the MMDM. Future research can be conducted based on this dissertation to obtain high-resolution 3-D retinal imaging.
机译:传统视网膜成像技术的分辨率受到人眼光学系统的限制。本文以高分辨率的视网膜成像技术为研究对象,对眼睛的像差及其补偿技术进行了研究。使用新型微机械膜可变形反射镜(MMDM)设备进行计算机建模和自适应光学实验。首先,开发了一种新的非球面计算机眼睛模型来研究眼睛的像差及其对视网膜成像的影响。计算出眼睛的像差和点扩展函数,发现它们与瞳孔大小有关且随空间变化。使用定制的镜头设计技术对像差补偿进行建模,显示出可以通过像差补偿用散瞳瞳孔获得高分辨率的视网膜图像。由于空间变化的性质和眼像差的个体变化,自适应光学技术对于动态像差补偿是必需的。因此,构建了一种基于新型,低成本,紧凑型MMDM的实验性自适应光学视网膜成像系统,以研究用于眼像差补偿的自适应光学技术,其中使用Hartmann-Shack波前传感器测量像差。由于难以控制新的MMDM设备,因此开发了一种新颖的控制算法来生成所需的波前,以补偿眼睛的像差。对MMDM进行了表征,并开发了一种闭环系统算法来实时补偿眼像差。该系统用人造眼睛进行了测试,表明该系统可以有效补偿眼睛的低阶像差,并在一定程度上有效补偿眼睛的高阶像差。当像差在MMDM的工作范围内时,可获得衍射极限分辨率。还可以用真眼进行像差补偿和视网膜成像实验,显示出提高的成像分辨率。另外,还对使用图像去卷积技术的互补自适应光学方法进行了初步研究,以在MMDM无法完全补偿眼睛像差时提高视网膜图像分辨率。以此为基础,可以进行高分辨率的3D视网膜成像。

著录项

  • 作者

    Zhu, Lijun.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;
  • 关键词

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