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An Online Failure Detection Method of the Glucose Sensor-Insulin Pump System: Improved Overnight Safety of Type-1 Diabetic Subjects

机译:葡萄糖传感器-胰岛素泵系统的在线故障检测方法:改善1型糖尿病患者的隔夜安全性

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摘要

Sensors for real-time continuous glucose monitoring (CGM) and pumps for continuous subcutaneous insulin infusion (CSII) have opened new scenarios for Type-1 diabetes treatment. However, occasional failures of either CGM or CSII may expose diabetic patients to possibly severe risks, especially overnight (e.g., inappropriate insulin administration). In this contribution, we present a method to detect in real time such failures by simultaneously using CGM and CSII data streams and a black-box model of the glucose–insulin system. First, an individualized state-space model of the glucose–insulin system is identified offline from CGM and CSII data collected during a previous monitoring. Then, this model, CGM and CSII real-time data streams are used online to obtain predictions of future glucose concentrations together with their confidence intervals by exploiting a Kalman filtering approach. If glucose values measured by the CGM sensor are not consistent with the predictions, a failure alert is generated in order to mitigate the risks for patient safety. The method is tested on 100 virtual patients created by using the UVA/Padova Type-1 diabetic simulator. Three different types of failures have been simulated: spike in the CGM profile, loss of sensitivity of glucose sensor, and failure in the pump delivery of insulin. Results show that, in all cases, the method is able to correctly generate alerts, with a very limited number of false negatives and a number of false positives, on average, lower than 10%. The use of the method in three subjects supports the simulation results, demonstrating that the accuracy of the method in generating alerts in presence of failures of the CGM sensor-CSII pump system can significantly improve safety of Type-1 diabetic patients overnight.
机译:实时连续葡萄糖监测(CGM)传感器和连续皮下胰岛素输注(CSII)泵为1型糖尿病治疗开辟了新的前景。但是,CGM或CSII的偶尔失败可能会使糖尿病患者面临严重的风险,尤其是在一夜之间(例如,不适当的胰岛素给药)。在这项贡献中,我们提出了一种通过同时使用CGM和CSII数据流以及葡萄糖-胰岛素系统的黑匣子模型来实时检测此类故障的方法。首先,从先前监测期间收集的CGM和CSII数据中离线识别葡萄糖-胰岛素系统的个性化状态空间模型。然后,该模型,CGM和CSII实时数据流用于在线,通过利用卡尔曼滤波方法来获得对未来葡萄糖浓度及其置信区间的预测。如果CGM传感器测得的葡萄糖值与预测值不一致,则会生成故障警报,以减轻患者安全的风险。该方法在使用UVA / Padova Type-1糖尿病模拟器创建的100名虚拟患者中进行了测试。已模拟了三种不同类型的故障:CGM曲线中的峰值,葡萄糖传感器灵敏度的损失以及胰岛素泵输送中的故障。结果表明,在所有情况下,该方法都能正确生成警报,假阴性的数量非常有限,假阳性的数量平均低于10%。该方法在三名受试者中的使用支持了仿真结果,表明该方法在CGM传感器-CSII泵系统出现故障时生成警报的准确性可以显着提高过夜的1型糖尿病患者的安全性。

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