首页> 外文期刊>Vision Research: An International Journal in Visual Science >Modeling of lateral magnification changes due to changes in corneal shape or refraction.
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Modeling of lateral magnification changes due to changes in corneal shape or refraction.

机译:由于角膜形状或折射的变化,侧面放大率变化的模型。

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BACKGROUND AND PURPOSE: Especially after corneal surgery the lateral magnification of the eye providing the retinal image size of an object is a crucial factor influencing visual acuity and binocularity. The purpose of this study is to describe a paraxial computing scheme calculating lateral magnification changes (ratio of the image sizes before and after surgery) due to variation in corneal shape and spectacle refraction. CALCULATION STRATEGY: From the 4 x 4 refraction and translation matrices the system matrix representing the entire 'optical system eye' and the pupil matrix describing the sub-system from the spectacle correction to the aperture stop were defined for the state before and after surgery. As the chief ray is assumed to pass through the centre of the aperture stop, the 2 x 2 matrix of the lateral magnification ratio from preoperative to postoperative is described by the 2 x 2 sub-matrices of the respective pupil matrices. The cardinal meridians can be extracted by calculating the eigenvalues and eigenvectors. WORKING EXAMPLE: Vertex distance 14 mm, measured distance between corneal apex and aperture stop 3.6mm, keratometry 39 D+6D/0 degrees to 47D+3D/30 degrees and refraction 3.5D-5-5D/5 degrees to -4.0 D-3.5D/25 degrees preoperatively to postoperatively. The matrix of magnification ratio from preop to postop yields (0.8960 -0.0085;0.0074 0.9371) and the eigenvalues decomposition provided a 10.7% minified image at 170.1 degrees and a minified image of 6.1% at 78.7 degrees , which both are clinically relevant. CONCLUSION: We presented a straight-forward computer-based strategy for calculation of retinal image size changes using 4 x 4 matrix notation. With this model the meridional changes in lateral magnification from the preoperative to the postoperative stage or between follow-up stages can be estimated from keratometry, refraction, vertex distance and anterior chamber depth, which might be important for binocularity and vision tests in corneal surgery.
机译:背景和目的:特别是在角膜手术后,提供物体视网膜图像大小的眼睛的侧向放大倍数是影响视敏度和双眼度的关键因素。这项研究的目的是描述一种旁轴计算方案,该方案计算由于角膜形状和眼镜屈光度变化而引起的横向放大率变化(手术前后图像尺寸的比率)。计算策略:根据4 x 4折射和平移矩阵,定义了代表整个“光学系统眼”的系统矩阵和描述了从眼镜矫正到孔径光阑的子系统的光瞳矩阵,以描述手术前后的状态。由于假定主光线穿过孔径光阑的中心,因此从术前到术后的横向放大率的2 x 2矩阵由各个瞳孔矩阵的2 x 2子矩阵描述。可以通过计算特征值和特征向量来提取基数子午线。工作示例:顶点距离14 mm,测得的角膜顶点与孔径光阑之间的距离3.6mm,角膜曲率法从39 D + 6D / 0度到47D + 3D / 30度,屈光度从3.5D-5-5D / 5度到-4.0 D-术前至术后3.5D / 25度。从术前到术后的放大率矩阵(0.8960 -0.0085; 0.0074 0.9371)以及特征值分解提供了170.1度的10.7%缩小图像和78.7度的6.1%缩小图像,这两者在临床上都是相关的。结论:我们提出了一种简单的基于计算机的策略,用于使用4 x 4矩阵表示法计算视网膜图像尺寸变化。使用该模型,可以从角膜曲率法,屈光度,顶点距离和前房深度估计术前到术后阶段或后续阶段之间横向放大的经向变化,这对于角膜手术中的双目和视力检查可能很重要。

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