Prediction Models for Prognosis of Hypoglycemia in Patients with Diabetes: A Systematic Review and Meta-Analysis

荟萃分析 低血糖 医学 置信区间 科克伦图书馆 梅德林 统计的 系统回顾 预测建模 糖尿病 重症监护医学 内科学 统计 计算机科学 机器学习 内分泌学 数学 政治学 法学
作者
Yi Wu,Ruxue Li,Yating Zhang,Tianxue Long,Qi Zhang,Mingzi Li
出处
期刊:Biological Research For Nursing [SAGE]
卷期号:25 (1): 41-50 被引量:2
标识
DOI:10.1177/10998004221115856
摘要

Objective To systematically summarize the reported prediction models for hypoglycemia in patients with diabetes, compare their performance, and evaluate their applicability in clinical practice. Methods We selected studies according to the PRISMA, appraised studies according to the Prediction model Risk of Bias Assessment Tool (PROBAST), and extracted and synthesized the data according to the CHARMS. The databases of PubMed, Web of Science, Embase, and Cochrane Library were searched from inception to 31 October 2021 using a systematic review approach to capture all eligible studies developing and/or validating a prognostic prediction model for hypoglycemia in patients with diabetes. The risk bias and clinical applicability were assessed using the PROBAST. The meta-analysis of the performance of the prediction models were also conducted. The protocol of this study was recorded in PROSPERO (CRD42022309852). Results Sixteen studies with 22 models met the eligible criteria. The predictors with the high frequency of occurrence among all models were age, HbA1c, history of hypoglycemia, and insulin use. A meta-analysis of C-statistic was performed for 21 prediction models, and the summary C-statistic and its 95% confidence interval and prediction interval were 0.7699 (0.7299–0.8098), 0.7699 (0.5862–0.9536), respectively. Heterogeneity exists between different hypoglycemia prediction models (τ 2 was 0.00734≠0). Conclusions The existing predictive models are not recommended for widespread clinical use. A high-quality hypoglycemia screening tool should be developed in future studies.
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