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A Run-to-Run Approach to Enhance Continuous Glucose Monitor Accuracy Based on Continuous Wear

机译:一种基于连续磨损的连续葡萄糖监测精度来提高跑步方法

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The accuracy of continuous glucose monitors (CGMs) plays a critical role in glucose management and the development of artificial pancreas systems. Current CGM performance can be improved by a run-to-run (R2R) strategy based on continuous wear that personalizes sensor calibration parameters using data from previous weeks' use. The proposed strategy determines personalized calibration curve parameter sets (calibration curve slope and intercept, sensitivity drift curve, mean reference error) by tapping into data that is readily available at the end of each week after weekly new sensor reinsertions, minimizing a cost function that penalizes the deviation between expected and actual blood glucose (BG) values. The algorithm was evaluated on 10 in silico subjects within the UVA/Padova metabolic simulator. The enhanced CGM's BG tracking was significantly improved over the standard CGM, decreasing the summed square error by over 20% in the second week and converging to 50% improvement by the 6th week. The R2R algorithm enhances glucose accuracy week by week based on continuous wear of the device.
机译:连续血糖监测(CGMS)的精度在葡萄糖管理的重要作用,人工胰腺系统的开发。当前CGM性能可以通过一个运行到运行(R2R)战略基于连续的磨损,使用来自先前星期的使用个性化数据的传感器校准参数来提高。所提出的策略确定由窃听到准备好被利用以每周一次新的传感器reinsertions后各周的末尾的数据,最小化成本函数惩罚个性化的校准曲线参数集(校准曲线的斜率和截距,灵敏度漂移曲线,平均参考误差)预期的和实际的血糖(BG)值之间的偏差。该算法在UVA /帕多瓦代谢模拟器内硅片上的受试者10进行评价。增强CGM的BG跟踪超过标准CGM是显著提高,超过20%在第二周减少了总结误差平方和第6周收敛于50%的改善。该R2R算法精度葡萄糖按周基于设备的连续配戴增强。

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