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基于图像软件的全自动前房细胞分析的开发。

Development of fully automated anterior chamber cell analysis based on image software.

机构信息

Department of Ophthalmology, Gyeongsang National University Changwon Hospital, #11 Samjeongja-ro, Seongsan-gu, Changwon, 51472, Republic of Korea.

Department of AI Convergence Engineering, Gyeongsang National University, Jinju, Republic of Korea.

出版信息

Sci Rep. 2021 May 21;11(1):10670. doi: 10.1038/s41598-021-89794-0.

Abstract

Optical coherence tomography (OCT) is a noninvasive method that can quickly and accurately examine the eye at the cellular level. Several studies have used OCT for analysis of anterior chamber cells. However, these studies have several limitations. This study was performed to supplement existing reports of automated analysis of anterior chamber cell images using spectral domain OCT (SD-OCT) and to compare this method with the Standardization of Uveitis Nomenclature (SUN) grading system. We analyzed 2398 anterior segment SD-OCT images from 34 patients using code written in Python. Cell density, size, and eccentricity were measured automatically. Increases in SUN grade were associated with significant cell density increases at all stages (p < 0.001). Significant differences were observed in eccentricity in uveitis, post-surgical inflammation, and vitreous hemorrhage (p < 0.001). Anterior segment SD-OCT is reliable, fast, and accurate means of anterior chamber cell analysis. This method showed a strong correlation with the SUN grade system. Also, eccentricity could be helpful as a supplementary evaluation tool.

摘要

光学相干断层扫描(OCT)是一种非侵入性的方法,可以快速准确地在细胞水平检查眼睛。几项研究已经使用 OCT 对前房细胞进行了分析。然而,这些研究存在一些局限性。本研究旨在补充使用光谱域 OCT(SD-OCT)对前房细胞图像进行自动分析的现有报告,并将该方法与葡萄膜炎命名标准化(SUN)分级系统进行比较。我们使用 Python 编写的代码分析了 34 名患者的 2398 个眼前节 SD-OCT 图像。自动测量细胞密度、大小和偏心度。在所有阶段,SUN 分级的增加与细胞密度的显著增加相关(p<0.001)。在葡萄膜炎、手术后炎症和玻璃体积血中观察到偏心度的显著差异(p<0.001)。眼前节 SD-OCT 是一种可靠、快速和准确的前房细胞分析方法。该方法与 SUN 分级系统具有很强的相关性。此外,偏心度可以作为一种补充评估工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fa1/8140074/bafdcee6bf3a/41598_2021_89794_Fig1_HTML.jpg

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