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Predicting hypoglycemia in diabetic patients using data mining techniques

机译:使用数据挖掘技术预测糖尿病患者的低血糖

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The proper control of blood glucose levels in diabetic patients reduces serious complications. Yet tighter glycemic control increases the risk of developing hypoglycemia, a sudden drop in patients' blood glucose levels that causes coma and possibly death if proper action is not taken immediately. In this paper, we propose a hypoglycemia prediction model, using recent history of subcutaneous glucose measurements collected via Continuous Glucose Monitoring (CGM) sensors. The model is able to predict hypoglycemia events within a prediction horizon of thirty minutes accurately (sensitivity= 86.47%, specificity= 96.22, accuracy= 95.97%) using only the last two glucose measurements and the difference between them. More remarkably, this study shows the ability to develop a generalized prediction model suitable for predicting hypoglycemia events for the group of patients participating in the study.
机译:适当控制糖尿病患者的血糖水平可以减少严重的并发症。然而,更严格的血糖控制会增加发生低血糖症的风险,如果不立即采取适当措施,患者血糖水平突然下降会导致昏迷,甚至可能导致死亡。在本文中,我们提出了一种低血糖预测模型,该模型使用了通过连续葡萄糖监测(CGM)传感器收集的皮下葡萄糖测量的最新历史。该模型仅使用最后两个血糖测量值之间的差值,便能够在三十分钟的预测范围内准确预测低血糖事件(敏感性= 86.47%,特异性= 96.22,准确性= 95.97%)。更引人注目的是,这项研究显示了为参与研究的患者组开发一种适用于预测低血糖事件的通用预测模型的能力。

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