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基于深度学习的脉络膜分析:健康人群脉络膜血管指数的分布及其影响因素——一项基于人群的 SS-OCT 研究。

Distribution and determinants of choroidal vascularity index in healthy eyes from deep-learning choroidal analysis: a population-based SS-OCT study.

机构信息

State Key Laboratory of Ophthalmology, Zhongshan Ophthalmic Center, Sun Yat-sen University, Guangdong Provincial Key Laboratory of Ophthalmology and Visual Science, Guangdong Provincial Clinical Research Center for Ocular Diseases, Guangzhou, China.

Department of Ophthalmology, Affiliated Foshan Hospital, Southern Medical University, Foshan, Guangdong, China.

出版信息

Br J Ophthalmol. 2024 Mar 20;108(4):546-551. doi: 10.1136/bjo-2023-323224.

Abstract

AIMS

To quantify the profiles of choroidal vascularity index (CVI) using fully artificial intelligence (AI)-based algorithm applied to swept-source optical coherence tomography (SS-OCT) images and evaluate the determinants of CVI in a population-based study.

METHODS

This cross-sectional study included adults aged ≥35 years residing in the Yuexiu District of Guangzhou, China, a follow-up population-based study. All participants (n=646) underwent comprehensive ophthalmic examinations, including SS-OCT for quantifying choroidal parameters. The CVI and subfoveal choroidal thickness (SFCT) were measured by a novel AI-based system.

RESULTS

A total of 556 participants were included, with a mean age of 56.4±9.9 years and 44.96% women. The average CVI and SFCT of the overall population were 69.7% (95% CI 69.2 to 70.3) and 263.0 µm (95% CI 257.2 to 268.8), respectively. After adjusting for other factors, older age and longer AL were significantly associated with a lower CVI. The CVI decreased by -0.13% (-0.19 to -0.06, p<0.001) with each 1-year increase in age, -2.10% (-3.29 to -0.92, p=0.001) with each 1 mm increase in AL. Furthermore, significantly positive correlation between CVI and SFCT has been observed, with coefficient of 0.059 (0.052 to 0.065, p<0.001).

CONCLUSION

Using new AI-based choroidal segmentation software, we provided a fast, reliable and objective CVI profile for large-scale samples. Older age and longer AL were independent correlates of choroidal thinning and CVI decline. These factors should be considered when interpreting SS-OCT-based choroidal measurements.

摘要

目的

利用完全基于人工智能(AI)的算法对扫频源光学相干断层扫描(SS-OCT)图像进行脉络膜血管指数(CVI)定量分析,并在一项基于人群的研究中评估 CVI 的决定因素。

方法

这是一项横断面研究,纳入了居住在中国广州市越秀区的≥35 岁成年人(一项基于人群的随访研究)。所有参与者(n=646)均接受了全面的眼科检查,包括 SS-OCT 以量化脉络膜参数。使用新型 AI 为基础的系统测量 CVI 和中心凹下脉络膜厚度(SFCT)。

结果

共纳入 556 名参与者,平均年龄为 56.4±9.9 岁,44.96%为女性。总体人群的平均 CVI 和 SFCT 分别为 69.7%(95% CI 69.2 至 70.3)和 263.0μm(95% CI 257.2 至 268.8)。在调整其他因素后,年龄较大和眼轴(AL)较长与 CVI 较低显著相关。CVI 随年龄每增加 1 岁下降-0.13%(-0.19 至-0.06,p<0.001),随 AL 增加 1mm 下降-2.10%(-3.29 至-0.92,p=0.001)。此外,还观察到 CVI 与 SFCT 之间存在显著正相关,相关系数为 0.059(0.052 至 0.065,p<0.001)。

结论

使用新型基于 AI 的脉络膜分割软件,我们为大规模样本提供了快速、可靠和客观的 CVI 图谱。年龄较大和 AL 较长是脉络膜变薄和 CVI 下降的独立相关因素。在解释基于 SS-OCT 的脉络膜测量值时,应考虑这些因素。

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