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A computational approach to high-resolution imaging of the living human retina without hardware adaptive optics

机译:没有硬件自适应光学器件的活性人视网膜高分辨率成像的计算方法

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We demonstrate high-resolution imaging of the living human retina by computationally correcting high-order ocular aberrations. These corrections are performed post-acquisition and without the need for a deformable mirror or wavefront sensor that are commonly employed in hardware adaptive optics (HAO) systems. With the introduction of HAO to ophthalmic imaging, high-resolution near diffraction-limited imaging of the living human retina has become possible. The combination of a deformable mirror, wavefront sensor, and supporting hardware/software, though, can more than double the cost of the underlying imaging modality, in addition to significantly increasing the system complexity and sensitivity to misalignment. Optical coherence tomography (OCT) allows 3-D imaging in addition to naturally providing the complex optical field of backscattered light. This is unlike a scanning laser ophthalmoscope which measures only the intensity of the backscattered light. Previously, our group has demonstrated the utility of a technique called computational adaptive optics (CAO) which utilizes the complex field measured with OCT to computationally correct for optical aberrations in a manner similar to HAO. Until now, CAO has been applied to ex vivo imaging and in vivo skin imaging. Here, we demonstrate in vivo imaging of cone photoreceptors using CAO. Additional practical considerations such as imaging speed, and stability are discussed.
机译:我们通过计算校正高阶眼镜畸变来展示活人视网膜的高分辨率成像。这些校正在获取后执行,并且在不需要用于硬件自适应光学(HAO)系统中通常采用的可变形镜子或波前传感器。随着HAO对眼科成像的引入,近似衍射的活性人视网膜的有限成像已经成为可能。尽管可变形镜,波前传感器和支持硬件/软件的组合可以多于底层成像模型的成本,除了显着提高系统复杂性和对未对准的敏感性之外。光学相干断层扫描(OCT)允许3-D成像除了自然提供反向散射光的复杂光学领域之外。这与扫描激光眼镜同样是仅测量后散射光的强度。此前,我们的小组已经证明了一种称为计算自适应光学(CAO)的技术的效用,该技术利用OCT测量的复杂场以类似于HAO的方式计算光学像差。到目前为止,Cao已被应用于例如exvivo成像和体内皮肤成像。在这里,我们展示了使用Cao的锥形光感受器的体内成像。讨论了诸如成像速度和稳定性等额外的实际考虑因素。

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