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通过光学相干断层扫描成像的调节过程中眼前节的自动生物测量

Automatic biometry of the anterior segment during accommodation imaged by optical coherence tomography.

作者信息

Zhu Dexi, Shao Yilei, Leng Lin, Xu Zhe, Wang Jianhua, Lu Fan, Shen Meixiao

机构信息

School of Optometry and Ophthalmology (D.Z., Y.S., L.L., Z.X., F.L., M.S.), Wenzhou Medical College, Wenzhou, Zhejiang, China; and Bascom Palmer Eye Institute (J.W.), Miller School of Medicine, University of Miami, Miami, FL.

出版信息

Eye Contact Lens. 2014 Jul;40(4):232-8. doi: 10.1097/ICL.0000000000000043.

Abstract

OBJECTIVE

To test accuracy and repeatability of a software algorithm that performs automatic biometry of the anterior segment of the human eye imaged with long scan depth optical coherence tomography (OCT).

METHODS

The ocular anterior segment imaging was performed with custom-built long scan depth OCT. An automatic software algorithm including boundary segmentation, image registration, and optical correction was developed for fast and reliable biometric measurements based on the OCT images. The boundary segmentation algorithm mainly used the gradient information of images and applied the shortest path search based on the dynamic programming to optimize the edge finding. The automatic algorithm was validated by comparison of the biometric dimensions between automatic and manual measurements and repeatability study.

RESULTS

Biometric dimensions of the anterior segment, including central corneal thickness, anterior chamber depth, pupil diameter, crystalline lens thickness, and radii of curvature of the anterior and posterior surfaces of lens, were obtained by the automatic algorithm successfully. There were no significant differences between the automatic and manual measurements for all biometric dimensions. The intraclass correlation coefficients (ICC) of agreement between automatic and manual measurements ranged from 0.85 to 0.98. The coefficients of repeatability and ICC for all automatic dimensions were satisfactory (1.1%-6.1% and 0.663-0.990, respectively).

CONCLUSIONS

The high accuracy, good repeatability, and fast execution speed for automatic measurement of the anterior segment dimensions on the OCT images were demonstrated. The application of this automatic biometry is promising for investigating dynamic changes of human anterior segment during accommodation in real time.

摘要

目的

测试一种软件算法的准确性和可重复性,该算法可对使用长扫描深度光学相干断层扫描(OCT)成像的人眼前节进行自动生物测量。

方法

使用定制的长扫描深度OCT进行眼前节成像。开发了一种自动软件算法,包括边界分割、图像配准和光学校正,用于基于OCT图像进行快速可靠的生物特征测量。边界分割算法主要利用图像的梯度信息,并应用基于动态规划的最短路径搜索来优化边缘检测。通过比较自动测量和手动测量的生物特征尺寸以及重复性研究对该自动算法进行验证。

结果

通过自动算法成功获得了前节的生物特征尺寸,包括中央角膜厚度、前房深度、瞳孔直径、晶状体厚度以及晶状体前后面的曲率半径。所有生物特征尺寸的自动测量和手动测量之间均无显著差异。自动测量和手动测量之间的组内相关系数(ICC)范围为0.85至0.98。所有自动测量尺寸的重复性系数和ICC均令人满意(分别为1.1%-6.1%和0.663-0.990)。

结论

证明了该算法在OCT图像上自动测量前节尺寸具有高精度、良好的可重复性和快速的执行速度。这种自动生物测量技术在实时研究人眼调节过程中前节的动态变化方面具有广阔的应用前景。

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