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The Unscented Kalman Filter estimates the plasma insulin from glucose measurement

机译:Unscented Kalman过滤器可通过葡萄糖测量估算血浆胰岛素

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Understanding the simultaneous interaction within the glucose and insulin homeostasis in real-time is very important for clinical treatment as well as for research issues. Until now only plasma glucose concentrations can be measured in real-time. To support a secure, effective and rapid treatment e.g. of diabetes a real-time estimation of plasma insulin would be of great value. A novel approach using an Unscented Kalman Filter that provides an estimate of the current plasma insulin concentration is presented, which operates on the measurement of the plasma glucose and Bergman's Minimal Model of the glucose insulin homeostasis. We can prove that process observability is obtained in this case. Hence, a successful estimator design is possible. Since the process is nonlinear we have to consider estimates that are not normally distributed. The symmetric Unscented Kalman Filter (UKF) will perform best compared to other estimator approaches as the Extended Kalman Filter (EKF), the simplex Unscented Kalman Filter (UKF), and the Particle Filter (PF). The symmetric UKF algorithm is applied to the plasma insulin estimation. It shows better results compared to the direct (open loop) estimation that uses a model of the insulin subsystem.
机译:实时了解葡萄糖和胰岛素稳态内的同时相互作用对于临床治疗以及研究问题非常重要。到目前为止,只能实时测量血浆葡萄糖浓度。为了支持安全,有效和快速的治疗,例如对于糖尿病,实时估计血浆胰岛素将具有重要价值。提出了一种使用无味卡尔曼滤波器的新颖方法,该方法可提供当前血浆胰岛素浓度的估计值,该方法可用于测量血浆葡萄糖和葡萄糖胰岛素稳态的伯格曼最小模型。我们可以证明在这种情况下可以获得过程可观察性。因此,成功的估算器设计是可能的。由于该过程是非线性的,因此我们必须考虑不是正态分布的估计。与其他估计器方法(如扩展卡尔曼滤波器(EKF),单工无味卡尔曼滤波器(UKF)和粒子滤波器(PF))相比,对称无味卡尔曼滤波器(UKF)的性能最佳。对称UKF算法应用于血浆胰岛素估计。与使用胰岛素子系统模型的直接(开环)估计相比,它显示出更好的结果。

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