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基于人工智能的决策支持系统与使用多次每日注射疗法的 1 型糖尿病患者的医生进行的胰岛素剂量调整比较。

Comparison of Insulin Dose Adjustments Made by Artificial Intelligence-Based Decision Support Systems and by Physicians in People with Type 1 Diabetes Using Multiple Daily Injections Therapy.

机构信息

The Jesse Z and Sara Lea Shafer Institute for Endocrinology and Diabetes, National Center for Childhood Diabetes, Schneider Children's Medical Center of Israel, Petah Tikva, Israel.

Sackler Faculty of Medicine, Tel Aviv University, Tel Hashomer, Israel.

出版信息

Diabetes Technol Ther. 2022 Aug;24(8):564-572. doi: 10.1089/dia.2021.0566.

Abstract

Artificial intelligence-based decision support systems (DSS) need to provide decisions that are not inferior to those given by experts in the field. Recommended insulin dose adjustments on the same individual data set were compared among multinational physicians, and with recommendations made by automated Endo.Digital DSS (ED-DSS). This was a noninterventional study surveying 20 physicians from multinational academic centers. The survey included 17 data cases of individuals with type 1 diabetes who are treated with multiple daily insulin injections. Participating physicians were asked to recommend insulin dose adjustments based on glucose and insulin data. Insulin dose adjustments recommendations were compared among physicians and with the automated ED-DSS. The primary endpoints were the percentage of comparison points for which there was agreement on the trend of insulin dose adjustments. The proportion of agreement and disagreement in the direction of insulin dose adjustment among physicians was statistically noninferior to the proportion of agreement and disagreement observed between ED-DSS and physicians for basal rate, carbohydrate-to insulin ratio, and correction factor ( < 0.001 and  ≤ 0.004 for all three parameters for agreement and disagreement, respectively). The ED-DSS magnitude of insulin dose change was consistently lower than that proposed by the physicians. Recommendations for insulin dose adjustments made by automatization did not differ significantly from recommendations given by expert physicians regarding the direction of change. These results highlight the potential utilization of ED-DSS as a useful clinical tool to manage insulin titration and dose adjustments.

摘要

基于人工智能的决策支持系统(DSS)需要提供不逊于该领域专家的决策。在相同的个体数据集上,比较了多国医生和自动化 Endo.Digital DSS(ED-DSS)的推荐胰岛素剂量调整。这是一项非干预性研究,调查了来自多国学术中心的 20 名医生。该调查包括 17 名接受多次每日胰岛素注射治疗的 1 型糖尿病患者的数据案例。要求参与医生根据血糖和胰岛素数据推荐胰岛素剂量调整。比较了医生之间以及与自动化 ED-DSS 之间的胰岛素剂量调整建议。主要终点是在胰岛素剂量调整趋势上达成一致的比较点的百分比。医生之间在胰岛素剂量调整方向上的一致和不一致的比例在统计学上不劣于 ED-DSS 和医生之间在基础率、碳水化合物与胰岛素比和校正因子方面观察到的一致和不一致的比例(对于所有三个参数的一致性和不一致性,分别为 < 0.001 和 ≤ 0.004)。ED-DSS 胰岛素剂量变化的幅度始终低于医生提出的幅度。关于变化方向,自动化的胰岛素剂量调整建议与专家医生的建议没有显著差异。这些结果突出了 ED-DSS 作为一种有用的临床工具在管理胰岛素滴定和剂量调整方面的潜在应用。

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