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人工智能筛查在预防糖尿病导致的视力丧失中的有效性:一种政策模型。

Effectiveness of artificial intelligence screening in preventing vision loss from diabetes: a policy model.

作者信息

Channa Roomasa, Wolf Risa M, Abràmoff Michael D, Lehmann Harold P

机构信息

Department of Ophthalmology and Visual Sciences, University of Wisconsin, Madison, WI, USA.

Department of Pediatrics, Division of Endocrinology, Johns Hopkins Medicine, Baltimore, MD, USA.

出版信息

NPJ Digit Med. 2023 Mar 27;6(1):53. doi: 10.1038/s41746-023-00785-z.

Abstract

The effectiveness of using artificial intelligence (AI) systems to perform diabetic retinal exams ('screening') on preventing vision loss is not known. We designed the Care Process for Preventing Vision Loss from Diabetes (CAREVL), as a Markov model to compare the effectiveness of point-of-care autonomous AI-based screening with in-office clinical exam by an eye care provider (ECP), on preventing vision loss among patients with diabetes. The estimated incidence of vision loss at 5 years was 1535 per 100,000 in the AI-screened group compared to 1625 per 100,000 in the ECP group, leading to a modelled risk difference of 90 per 100,000. The base-case CAREVL model estimated that an autonomous AI-based screening strategy would result in 27,000 fewer Americans with vision loss at 5 years compared with ECP. Vision loss at 5 years remained lower in the AI-screened group compared to the ECP group, in a wide range of parameters including optimistic estimates biased toward ECP. Real-world modifiable factors associated with processes of care could further increase its effectiveness. Of these factors, increased adherence with treatment was estimated to have the greatest impact.

摘要

使用人工智能(AI)系统进行糖尿病视网膜检查(“筛查”)对预防视力丧失的有效性尚不清楚。我们设计了预防糖尿病视力丧失护理流程(CAREVL),作为一种马尔可夫模型,以比较即时护理自主AI筛查与眼科护理人员(ECP)进行的办公室内临床检查在预防糖尿病患者视力丧失方面的有效性。AI筛查组5年时视力丧失的估计发病率为每10万人中有1535例,而ECP组为每10万人中有1625例,导致建模的风险差异为每10万人中有90例。基础病例CAREVL模型估计,与ECP相比,基于自主AI的筛查策略在5年时将使视力丧失的美国人数减少27,000人。在包括偏向ECP的乐观估计在内的广泛参数中,AI筛查组5年时的视力丧失情况仍低于ECP组。与护理过程相关的现实世界中可改变的因素可能会进一步提高其有效性。在这些因素中,估计增加治疗依从性的影响最大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c27c/10042864/bc38c00720be/41746_2023_785_Fig1_HTML.jpg

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