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A Hybrid Clustering Prediction for Type 1 Diabetes Aid: Towards Decision Support Systems Based upon Scenario Profile Analysis

机译:1型糖尿病患者的混合聚类预测:基于情景分析的决策支持系统

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Type 1 diabetic patients present large variability reducing dramatically the ability to achieve adequate blood glucose control. Lifestyle and physiological factors highly impact their treatments which require some predictive capabilities to prevent as many adverse events as possible. The identification of the characteristic profiles of these patients would lead to an improvement in the accuracy of treatments in the specific scenarios that they face. This study presents the proof of concept of a clinical decision support system combining a classifier of glycemic profiles and a predictor of blood glucose levels. The system is aimed to identify data profiles according to a given scenario and to generate prediction models based of these scenarios to forecast blood glucose levels. The experiments were conducted in silico, by simulating different characteristics profiles of type 1 diabetic patients, in order to prove the feasibility of the approach. Clinical decision support systems based on this methodology could assist type 1 diabetic patients in their treatments according to patient's conditions and to the situations faced by patients.
机译:1型糖尿病患者表现出较大的变异性,大大降低了实现足够的血糖控制的能力。生活方式和生理因素对他们的治疗产生了极大的影响,这需要一定的预测能力来预防尽可能多的不良事件。这些患者的特征特征的识别将导致他们所面对的特定情况下治疗准确性的提高。这项研究提出了临床决策支持系统的概念证明,该系统结合了血糖特征分类器和血糖水平预测器。该系统旨在根据给定场景识别数据配置文件,并基于这些场景生成预测模型以预测血糖水平。为了模拟该方法的可行性,通过模拟1型糖尿病患者的不同特征曲线在计算机上进行了实验。基于这种方法的临床决策支持系统可以根据患者的病情和患者所面对的情况帮助1型糖尿病患者进行治疗。

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