低血糖
连续血糖监测
机器学习
人工智能
计算机科学
深度学习
一般化
警报
糖尿病
算法
恒虚警率
1型糖尿病
医学
数学
内分泌学
工程类
数学分析
航空航天工程
作者
Jian Shao,Ying Pan,Wei-Bin Kou,Huyi Feng,Yu Zhao,Kaixin Zhou,Shao Zhong
摘要
Predicting hypoglycemia while maintaining a low false alarm rate is a challenge for the wide adoption of continuous glucose monitoring (CGM) devices in diabetes management. One small study suggested that a deep learning model based on the long short-term memory (LSTM) network had better performance in hypoglycemia prediction than traditional machine learning algorithms in European patients with type 1 diabetes. However, given that many well-recognized deep learning models perform poorly outside the training setting, it remains unclear whether the LSTM model could be generalized to different populations or patients with other diabetes subtypes.
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