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Managing Diabetes Therapy through Datastream Mining

机译:通过数据流挖掘管理糖尿病治疗

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In insulin-dependent diabetes mellitus (IDDM) therapy, a suitable insulin dosage taken at the appropriate times is needed for each patient to sustain the necessary blood-glucose level for his or her body. In this article, a datastream mining approach is proposed that can computationally derive real-time decision rules for formulating IDDM therapy based on insulin prescription records and patients’ blood-glucose reactions. Decision rules are based on the latest health conditions, which are monitored continuously from the patient rather than from a historical data archive of a population accumulated over years. Hence, the rules are adaptive and more accurately predict whether a medical implication will occur, given that glucose levels fluctuate under different medical effects, such as lifestyle changes, medication type, or other external factors. A computer simulation experiment is conducted for evaluating the most suitable datastream algorithms with respect to accuracy and speed.
机译:在胰岛素依赖型糖尿病(IDDM)治疗中,每位患者都需要在适当的时间服用适当的胰岛素剂量,以维持其身体所需的血糖水平。本文提出了一种数据流挖掘方法,该方法可以根据胰岛素处方记录和患者的血糖反应,以计算方式得出制定IDDM治疗的实时决策规则。决策规则基于最新的健康状况,该状况由患者而不是多年来累积的人口历史数据存档连续监测。因此,由于葡萄糖水平在不同的医学效应(例如生活方式的改变,药物类型或其他外部因素)的作用下波动,因此这些规则具有适应性,并且可以更准确地预测是否会产生医学含义。进行了计算机仿真实验,以评估准确性和速度方面最合适的数据流算法。

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