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Applications of Artificial Intelligence to Electronic Health Record Data in Ophthalmology

机译:人工智能在眼科电子病历数据中的应用

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摘要

Widespread adoption of electronic health records (EHRs) has resulted in the collection of massive amounts of clinical data. In ophthalmology in particular, the volume range of data captured in EHR systems has been growing rapidly. Yet making effective secondary use of this EHR data for improving patient care and facilitating clinical decision-making has remained challenging due to the complexity and heterogeneity of these data. Artificial intelligence (AI) techniques present a promising way to analyze these multimodal data sets. While AI techniques have been extensively applied to imaging data, there are a limited number of studies employing AI techniques with clinical data from the EHR. The objective of this review is to provide an overview of different AI methods applied to EHR data in the field of ophthalmology. This literature review highlights that the secondary use of EHR data has focused on glaucoma, diabetic retinopathy, age-related macular degeneration, and cataracts with the use of AI techniques. These techniques have been used to improve ocular disease diagnosis, risk assessment, and progression prediction. Techniques such as supervised machine learning, deep learning, and natural language processing were most commonly used in the articles reviewed.
机译:电子健康记录(EHR)的广泛采用导致收集了大量的临床数据。特别是在眼科方面,在EHR系统中捕获的数据量范围正在迅速增长。然而,由于这些数据的复杂性和异质性,如何有效利用这些EHR数据来改善患者护理水平并促进临床决策仍然具有挑战性。人工智能(AI)技术提供了一种分析这些多模式数据集的有前途的方法。虽然AI技术已广泛应用于成像数据,但使用AI技术结合EHR的临床数据进行的研究却很少。本文的目的是概述眼科领域应用于EHR数据的不同AI方法。这篇文献综述强调,通过使用AI技术,EHR数据的二次使用主要集中在青光眼,糖尿病性视网膜病变,年龄相关性黄斑变性和白内障。这些技术已用于改善眼部疾病的诊断,风险评估和进展预测。有监督的机器学习,深度学习和自然语言处理等技术最常用于所审阅的文章中。

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