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Compositional Data Analysis of Glucose Profiles of Type 1 Diabetes Patients ?

机译:1型糖尿病患者血糖分布的成分数据分析

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Time spent in different glucose ranges indicate the occurrence of adverse events and measure the quality of glucose control in type one diabetes (T1D) patients. This work proposes a Compositional Data (CoDa) approach applied to glucose profiles obtained from six T1D patients using continuous glucose monitor (CGM). Glucose profiles limited to 6-h duration were analyzed at four different times of the day These glucose profiles were distributed into time spent in five glucose ranges, which determine the composition. The log-ratio coordinates of the compositions were categorized through a clustering algorithm, which later made possible the obtainment of a linear model that should be used to predict the category of a 6-h period in different times of day. Leave-one-out cross-validation was performed, achieving an average above 90% of correct classification. A probabilistic model of transition between the category of the past 6-h of glucose to the category of the future 6-h period was obtained. Results show that the CoDa approach not only works as new analysis tool and is suitable for the categorization of glucose profiles, but also is a complementary tool for the prediction of different categories of glucose control. This prediction could assist patients to take correction measures in advance to adverse situations.
机译:在不同的血糖范围内花费的时间表明了不良事件的发生,并衡量了1型糖尿病(T1D)患者的血糖控制质量。这项工作提出了一种成分数据(CoDa)方法,该方法适用于使用连续葡萄糖监测仪(CGM)从六名T1D患者中获得的葡萄糖谱。在一天的四个不同时间分析了限制在6小时内的葡萄糖分布图。这些葡萄糖分布图被分布到五个范围的葡萄糖中,这些时间决定了组成。通过聚类算法对组合物的对数比坐标进行分类,此算法随后使获得线性模型成为可能,该线性模型应用于预测一天中不同时间的6小时周期的类别。进行留一法交叉验证,平均达到正确分类的90%以上。获得了过去6小时葡萄糖类别到未来6小时周期类别之间转换的概率模型。结果表明,CoDa方法不仅可以用作新的分析工具,适合于葡萄糖谱的分类,而且是预测不同类别葡萄糖控制的补充工具。该预测可以帮助患者针对不良情况提前采取纠正措施。

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