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Enhanced accuracy of continuous glucose monitoring by online extended kalman filtering.

机译:通过在线扩展卡尔曼滤波提高了连续葡萄糖监测的准确性。

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BACKGROUND: Most continuous glucose monitoring (CGM) devices measure a current, proportional to the interstitial glucose (IG) concentration, which is converted into a glucose level by a standard device calibration step that exploits some blood glucose (BG) references. However, data show that deterioration of sensor gain may occur, which can affect CGM output by a systematic and possibly large (e.g., up to 15/20 mg/dL) error. Enhanced calibration algorithms for improving the accuracy of CGM are thus of critical importance, especially in real-time applications. METHODS: In this work we present an enhanced Bayesian calibration method that can be implemented online by using the Extended Kalman Filter. The method takes into account the existence of BG-to-IG kinetics by incorporating a population convolution model and exploits only four BG reference samples per day. RESULTS: The new method is successfully applied on 10 simulated virtual patients. Its performance in improving the accuracy of CGM profiles is significantly better than that of other current calibration procedures. Furthermore, the new method is shown to be robust to changes in its parameters. Improvement in the accuracy of CGM is also shown on a representative subject. CONCLUSIONS: Realistic simulations show that the new enhanced calibration method significantly improves the accuracy of CGM signals, suggesting potential benefits by its inclusion in real-time applications of CGM devices.
机译:背景技术:大多数连续血糖监测(CGM)设备测量与组织间葡萄糖(IG)浓度成比例的电流,该电流通过利用某些血糖(BG)参考的标准设备校准步骤转换为葡萄糖水平。但是,数据表明,可能会发生传感器增益的下降,这可能会由于系统性且可能较大(例如,高达15/20 mg / dL)的误差而影响CGM输出。因此,用于提高CGM精度的增强校准算法至关重要,尤其是在实时应用中。方法:在这项工作中,我们提出了一种增强的贝叶斯校准方法,该方法可以通过使用扩展卡尔曼滤波器在线实现。该方法通过合并总体卷积模型考虑了BG到IG动力学的存在,并且每天仅利用四个BG参考样本。结果:该新方法已成功应用于10名模拟虚拟患者。它在提高CGM轮廓精度方面的性能明显优于其他当前的校准程序。此外,新方法显示出对参数变化的鲁棒性。 CGM准确性的提高也显示在一个具有代表性的主题上。结论:现实仿真表明,新的增强型校准方法显着提高了CGM信号的准确性,并暗示了将其包含在CGM设备的实时应用中的潜在好处。

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