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Refractive correction method for digital charge-coupled device-recorded Scheimpflug photographs by means of ray tracing

机译:数字电荷耦合器件记录的Scheimpflug照片的光线示踪折光校正方法

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摘要

Our purpose is to correct digital CCD-recorded Scheimpflug photographs, imaging both the anterior and posterior corneal surface, the anterior chamber, and the anterior eye lens surface for optical distortions. In a ray-tracing algorithm the imaging of the posterior corneal surface in a given Scheimpflug photograph is corrected by applying Snell’s law on parallel incident rays entering through the anterior corneal surface. Once the posterior corneal surface is corrected, the procedure is repeated, again with parallel incident rays entering through both the anterior and now corrected posterior corneal surface, to correct the imaging of the anterior eye lens surface. The refractive indices necessary for Snell’s law are taken from Gullstrand’s exact schematic eye model. Due to the optical/refractive correction, the digital Scheimpflug photograph decreases in size perpendicular to the direction of the optical axis. As a consequence the curvature radii of both the posterior corneal surface and the anterior lens surface are reduced significantly, as compared to the original digital Scheimpflug photograph. Furthermore, the corneal thickness and the anterior chamber depth are increased. The presented refractive correction method enables us to extract from Scheimpflug photographs the following quantities rather realistically: structure coordinates and curvature radii of both the posterior corneal surface and the anterior lens surface, corneal thickness, and anterior chamber depth. This method can readily be applied to other imaged quantities, such as the posterior eye lens surface, the lens thickness, and the pupillary opening.
机译:我们的目的是校正数码CCD记录的Scheimpflug照片,对角膜前后表面,前房和前晶状体表面成像,以防止光学畸变。在光线追踪算法中,通过对通过前角膜表面入射的平行入射光线应用斯涅尔定律,可以校正给定Scheimpflug照片中后角膜表面的成像。一旦矫正了角膜后表面,就重复该过程,再次使平行的入射光线通过前角膜和现在已矫正的后角膜表面进入,以矫正前眼晶状体表面的成像。斯内尔定律所必需的折射率取自古斯特兰德(Gullstrand)的精确眼图模型。由于光学/折射校正,数码Scheimpflug照片的尺寸在垂直于光轴方向的方向上减小。结果,与原始数字Scheimpflug照片相比,后角膜表面和前晶状体表面的曲率半径都显着减小。此外,角膜厚度和前房深度增加。提出的屈光矫正方法使我们能够从Scheimpflug的照片中更实际地提取以下数量:角膜后表面和晶状体前表面的结构坐标和曲率半径,角膜厚度和前房深度。该方法可以很容易地应用于其他成像量,例如后眼晶状体表面,晶状体厚度和瞳孔。

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    Fink Wolfgang;

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  • 年度 2005
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