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基于人工智能的糖尿病视网膜病变筛查实施的决定因素——一项针对德国全科医生的横断面研究

Determinants of the implementation of artificial intelligence-based screening for diabetic retinopathy-a cross-sectional study with general practitioners in Germany.

作者信息

Wewetzer Larisa, Held Linda A, Goetz Katja, Steinhäuser Jost

机构信息

Institute for Family Medicine, University Medical Center Schleswig-Holstein, Lubeck Campus, Lubeck, Germany.

出版信息

Digit Health. 2023 May 30;9:20552076231176644. doi: 10.1177/20552076231176644. eCollection 2023 Jan-Dec.

Abstract

OBJECTIVE

Diabetic retinopathy (DR) may lead to irreversible damage to the eye and cause blindness if diagnosed in its advanced stages. Artificial intelligence (AI) may support screening and contribute to a timely diagnosis. The aim of this study was to evaluate factors that might influence the success of implementing AI-supported devices for DR screenings in general practice.

METHODS

A questionnaire with modules on attitudes toward digital solutions, technical factors, perceived patient perspectives, and sociodemographic data was constructed and 2100 general practitioners (GPs) in Germany were invited to participate via a personal letter.

RESULTS

Two hundred nine physicians participated in the survey (10% response rate, mean age = 54 years, 46% women). Acquisition costs (mean = 1.37), remuneration (mean = 1.46), and running costs (mean = 1.40) were considered particularly relevant in the context of AI-based screening tools. GPs indicated that a mean of €27.00 (SD = 19) was considered to be an appropriate reimbursement for an AI-based screening for DR in their practice. Less relevant factors were availability of a smartphone used in the practice (mean = 2.53) and time until the examination result was available (mean = 2.29). Important technical factors were practicability of the device (mean = 1.27), unproblematic installation of any necessary software (mean = 1.34), and the integrability into the practice information system (mean = 1.44). Considering the patient welfare, physicians rated the accuracy of the examination, omission of pupil dilation, and the duration of the examination as the most important factors. Participants ranked the factors broadening the scope of care, strengthening the primary care (PC) range, and signs of modern medical practice as the most important factors for making an AI-based screening tool attractive for their practice.

CONCLUSIONS

These findings serve as a basis for a successful implementation of AI-assisted screening devices in PC and might facilitate early screenings for ophthalmological diseases in general practice. The most relevant barriers that need to be overcome for a successful implementation of such tools include clarification of the costs and reimbursement policies.

摘要

目的

糖尿病视网膜病变(DR)若在晚期才被诊断出来,可能会导致眼睛不可逆转的损伤并致盲。人工智能(AI)可辅助筛查并有助于及时诊断。本研究的目的是评估可能影响在全科医疗中成功实施用于DR筛查的人工智能支持设备的因素。

方法

构建了一份包含有关对数字解决方案的态度、技术因素、患者感知视角以及社会人口统计学数据等模块的问卷,并通过私人信件邀请德国的2100名全科医生(GP)参与。

结果

209名医生参与了调查(回复率为10%,平均年龄 = 54岁,46%为女性)。购置成本(平均 = 1.37)、报酬(平均 = 1.46)和运行成本(平均 = 1.40)在基于人工智能的筛查工具背景下被认为尤为相关。全科医生表示,在他们的实践中,基于人工智能的DR筛查的适当报销金额平均为27.00欧元(标准差 = 19)。不太相关的因素是实践中使用的智能手机的可用性(平均 = 2.53)以及获得检查结果所需的时间(平均 = 2.29)。重要的技术因素是设备的实用性(平均 = 1.27)、任何必要软件的顺利安装(平均 = 1.34)以及与实践信息系统的可集成性(平均 = 1.44)。考虑到患者福利,医生将检查的准确性、无需散瞳以及检查时长视为最重要的因素。参与者将拓宽护理范围、加强初级保健(PC)范围以及现代医疗实践的标志等因素列为使基于人工智能的筛查工具对他们的实践具有吸引力的最重要因素。

结论

这些发现为在初级保健中成功实施人工智能辅助筛查设备奠定了基础,并可能促进全科医疗中眼科疾病的早期筛查。成功实施此类工具需要克服的最相关障碍包括明确成本和报销政策。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e702/10233602/af94e296abcd/10.1177_20552076231176644-fig1.jpg

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