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Image reconstruction in time-varying electrical impedance tomography based on the extended Kalman filter

机译:基于扩展卡尔曼滤波器的时变电阻抗层析成像图像重建

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摘要

In electrical impedance tomography (EIT), the resistivity (conductivity) distribution of the unknown object is estimated from boundary voltages induced by different current patterns with the aid of various reconstruction algorithms. In this paper, we propose an EIT image reconstruction algorithm based on the extended Kalman filter (EKF) to estimate rapidly time-varying changes in resistivity occurring within the time taken to acquire a full set of independent measurement data. The EIT inverse problem is formulated as a state estimation problem in which the system is modelled with the state equation and the observation equation. The unknown time-varying state (resistivity) is estimated with the aid of the EKF. Both computer simulations with synthetic data and experiments with real measurement data are provided to illustrate the reconstruction performance of the proposed algorithm.
机译:在电阻抗断层扫描(EIT)中,借助各种重构算法,根据不同电流模式引起的边界电压来估算未知对象的电阻率(电导率)分布。在本文中,我们提出了一种基于扩展卡尔曼滤波器(EKF)的EIT图像重建算法,以快速估计在获取全套独立测量数据所花费的时间内发生的电阻率的时变变化。 EIT逆问题被表述为状态估计问题,其中使用状态方程和观察方程对系统进行建模。借助EKF估算未知的时变状态(电阻率)。提供了具有合成数据的计算机仿真和具有实际测量数据的实验,以说明所提出算法的重构性能。

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