Deep learning-based normative database of anterior chamber dimensions for angle closure assessment: the Singapore Chinese Eye Study

IF 3.7 2区 医学 Q1 OPHTHALMOLOGY
Zhi-Da Soh, Mingrui Tan, Zann Lee, Marco Yu, Sahil Thakur, Raghavan Lavanya, Monisha Esther Nongpiur, Xinxing Xu, Victor Koh, Tin Aung, Yong Liu, Ching-Yu Cheng
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引用次数: 0

Abstract

Background/ Aims The lack of context for anterior segment optical coherence tomography (ASOCT) measurements impedes its clinical utility. We established the normative distribution of anterior chamber depth (ACD), area (ACA) and width (ACW) and lens vault (LV), and applied percentile cut-offs to detect primary angle closure disease (PACD; ≥180° posterior trabecular meshwork occluded). Methods We included subjects from the Singapore Chinese Eye Study with ASOCT scans. Eyes with ocular surgery or laser procedures, and ocular trauma were excluded. A deep-learning algorithm was used to obtain Visante ASOCT (Carl Zeiss Meditec, USA) measurements. Normative distribution was established using 80% of eyes with open angles. Multivariable logistic regression was performed on 80% open and 80% angle closure eyes. Diagnostic performance was evaluated using 20% open and 20% angle closure eyes. Results We included 2157 eyes (1853 open angles; 304 angle closure) for analysis. ACD, ACA and ACW decreased with age and were smaller in females, and vice versa for LV (all p<0.022). ACD 20th percentile and LV 85th percentile had a balanced accuracy of 84.4% and 84.2% in detecting PACD, respectively. When combined, ACD 20th and LV 85th percentile had 88.68% sensitivity and 88.85% specificity in detecting PACD as compared with a multivariable regression model (ACA, angle opening distance, LV, iris area) with 88.33% sensitivity and 83.75% specificity. Conclusion Anterior chamber parameters varied with age and gender. The ACD 20th and LV 85th percentile values may be used in silos or in combination to detect PACD in the absence of more sophisticated classification algorithms. Data are available on reasonable request. The data included in this study are not publicly available due to patient privacy and the data are meant for research purposes only. On reasonable request, de-identified data used in this study may be made available for academic purpose by the Singapore Eye Research Institute (SERI), subjected to approval by the local institutional review board. Data request can be sent to the Data Access Committee at SERI via seri@seri.com.sg. Any data that can be shared will be released via a Research Collaboration Agreement (RCA) for non-commercial research purpose.
基于深度学习的用于闭角评估的前房尺寸规范数据库:新加坡华人眼科研究
背景/目的 前节光学相干断层扫描(ASOCT)测量结果缺乏背景信息,妨碍了其临床应用。我们建立了前房深度(ACD)、面积(ACA)、宽度(ACW)和晶状体穹窿(LV)的标准分布,并采用百分位数截断法检测原发性闭角疾病(PACD;后小梁网闭塞≥180°)。方法 我们纳入了新加坡华人眼科研究的 ASOCT 扫描对象。排除了眼部手术或激光治疗以及眼外伤的眼睛。使用深度学习算法获得 Visante ASOCT(卡尔蔡司医疗技术公司,美国)的测量结果。使用 80% 的开角眼来建立标准分布。对 80% 的开角眼和 80% 的闭角眼进行多变量逻辑回归。使用 20% 的开角眼和 20% 的闭角眼评估诊断性能。结果 我们纳入了 2157 只眼睛(1853 只开角;304 只闭角)进行分析。ACD、ACA和ACW随年龄增长而下降,女性的ACD、ACA和ACW更小,反之亦然(均P<0.022)。ACD 第 20 百分位数和 LV 第 85 百分位数检测 PACD 的平衡准确率分别为 84.4% 和 84.2%。与多变量回归模型(ACA、开角距离、LV、虹膜面积)88.33%的灵敏度和83.75%的特异性相比,ACD第20百分位数和LV第85百分位数联合检测PACD的灵敏度为88.68%,特异性为88.85%。结论 前房参数随年龄和性别而变化。在没有更复杂的分类算法的情况下,ACD 第 20 个百分位值和 LV 第 85 个百分位值可单独或结合使用来检测 PACD。如有合理要求,可提供相关数据。由于涉及患者隐私,本研究中的数据不对外公开,数据仅供研究使用。经合理请求,新加坡眼科研究所(SERI)可将本研究中使用的去标识化数据提供给学术界使用,但需获得当地机构审查委员会的批准。数据申请可通过 seri@seri.com.sg 发送给新加坡眼科研究所的数据访问委员会。任何可以共享的数据将通过研究合作协议(RCA)发布,用于非商业研究目的。
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来源期刊
CiteScore
10.30
自引率
2.40%
发文量
213
审稿时长
3-6 weeks
期刊介绍: The British Journal of Ophthalmology (BJO) is an international peer-reviewed journal for ophthalmologists and visual science specialists. BJO publishes clinical investigations, clinical observations, and clinically relevant laboratory investigations related to ophthalmology. It also provides major reviews and also publishes manuscripts covering regional issues in a global context.
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