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急性视网膜坏死综合征的分类标准。

Classification Criteria for Acute Retinal Necrosis Syndrome.

出版信息

Am J Ophthalmol. 2021 Aug;228:237-244. doi: 10.1016/j.ajo.2021.03.057. Epub 2021 Apr 15.

Abstract

PURPOSE

To determine classification criteria for acute retinal necrosis (ARN).

DESIGN

Machine learning of cases with ARN and 4 other infectious posterior uveitides / panuveitides.

METHODS

Cases of infectious posterior uveitides / panuveitides were collected in an informatics-designed preliminary database, and a final database was constructed of cases achieving supermajority agreement on diagnosis, using formal consensus techniques. Cases were split into a training set and a validation set. Machine learning using multinomial logistic regression was used on the training set to determine a parsimonious set of criteria that minimized the misclassification rate among the infectious posterior uveitides / panuveitides. The resulting criteria were evaluated on the validation set.

RESULTS

Eight hundred three cases of infectious posterior uveitides / panuveitides, including 186 cases of ARN, were evaluated by machine learning. Key criteria for ARN included (1) peripheral necrotizing retinitis and either (2) polymerase chain reaction assay of an intraocular fluid specimen positive for either herpes simplex virus or varicella zoster virus or (3) a characteristic clinical appearance with circumferential or confluent retinitis, retinal vascular sheathing and/or occlusion, and more than minimal vitritis. Overall accuracy for infectious posterior uveitides / panuveitides was 92.1% in the training set and 93.3% (95% confidence interval 88.2, 96.3) in the validation set. The misclassification rates for ARN were 15% in the training set and 11.5% in the validation set.

CONCLUSIONS

The criteria for ARN had a reasonably low misclassification rate and seemed to perform sufficiently well for use in clinical and translational research.

摘要

目的

确定急性视网膜坏死 (ARN) 的分类标准。

设计

ARN 病例与其他 4 种感染性后葡萄膜炎/全葡萄膜炎的机器学习。

方法

在信息学设计的初步数据库中收集感染性后葡萄膜炎/全葡萄膜炎病例,并使用正式共识技术对达成诊断的多数意见病例构建最终数据库。病例分为训练集和验证集。在训练集上使用多项逻辑回归的机器学习确定一组简洁的标准,以最大限度地降低感染性后葡萄膜炎/全葡萄膜炎之间的分类错误率。将得出的标准应用于验证集进行评估。

结果

使用机器学习评估了 803 例感染性后葡萄膜炎/全葡萄膜炎病例,包括 186 例 ARN。ARN 的关键标准包括(1)周边坏死性视网膜炎,以及(2)眼内液标本聚合酶链反应检测单纯疱疹病毒或水痘带状疱疹病毒阳性,或(3)具有特征性临床表现的环形或融合性视网膜炎、视网膜血管鞘和/或闭塞,以及不止轻微的玻璃体炎症。训练集中感染性后葡萄膜炎/全葡萄膜炎的总准确率为 92.1%,验证集中为 93.3%(95%置信区间 88.2,96.3)。训练集中 ARN 的分类错误率为 15%,验证集中为 11.5%。

结论

ARN 的标准分类错误率较低,似乎足以用于临床和转化研究。

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