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Lens-based wavefront sensorless adaptive optics swept source OCT

机译:基于透镜的波前无传感器自适应光学扫频光源OCT

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Optical coherence tomography (OCT) has revolutionized modern ophthalmology, providing depth resolved images of the retinal layers in a system that is suited to a clinical environment. Although the axial resolution of OCT system, which is a function of the light source bandwidth, is sufficient to resolve retinal features at a micrometer scale, the lateral resolution is dependent on the delivery optics and is limited by ocular aberrations. Through the combination of wavefront sensorless adaptive optics and the use of dual deformable transmissive optical elements, we present a compact lens-based OCT system at an imaging wavelength of 1060?nm for high resolution retinal imaging. We utilized a commercially available variable focal length lens to correct for a wide range of defocus commonly found in patient's eyes, and a novel multi-actuator adaptive lens for aberration correction to achieve near diffraction limited imaging performance at the retina. With a parallel processing computational platform, high resolution cross-sectional and en face retinal image acquisition and display was performed in real time. In order to demonstrate the system functionality and clinical utility, we present images of the photoreceptor cone mosaic and other retinal layers acquired in vivo from research subjects.
机译:光学相干断层扫描(OCT)彻底改变了现代眼科学,在适合临床环境的系统中提供了视网膜层的深度分辨图像。尽管OCT系统的轴向分辨率(取决于光源带宽)足以解决微米级的视网膜特征,但横向分辨率取决于输送光学系统,并受到眼像差的限制。通过结合波前无传感器自适应光学元件和使用双可变形透射光学元件,我们提出了一种紧凑的基于透镜的OCT系统,其成像波长为1060nm,用于高分辨率视网膜成像。我们利用市售的可变焦距镜头来校正患者眼中常见的大范围散焦,并利用新型的多执行器自适应透镜进行像差校正,以在视网膜上实现近衍射受限的成像性能。使用并行处理计算平台,可以实时执行高分辨率横截面和面对面视网膜图像的采集和显示。为了证明系统功能和临床实用性,我们介绍了从研究对象体内获得的感光锥马赛克和其他视网膜层的图像。

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