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Adaptive Kaczmarz Method for Image Reconstruction in Electrical Impedance Tomography

机译:阻抗层析成像中的自适应Kaczmarz图像重建方法

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摘要

We present an adaptive Kaczmarz method for solving the inverse problem in electrical impedance tomography and determining the conductivity distribution inside an object from electrical measurements made on the surface. To best characterize an unknown conductivity distribution and avoid inverting the Jacobian-related term JTJ which could be expensive in terms of computation cost and memory in large scale problems, we propose solving the inverse problem by applying the optimal current patterns for distinguishing the actual conductivity from the conductivity estimate between each iteration of the block Kaczmarz algorithm. With a novel subset scheme, the memory-efficient reconstruction algorithm which appropriately combines the optimal current pattern generation with the Kaczmarz method can produce more accurate and stable solutions adaptively as compared to traditional Kaczmarz and Gauss-Newton type methods. Choices of initial current pattern estimates are discussed in the paper. Several reconstruction image metrics are used to quantitatively evaluate the performance of the simulation results.
机译:我们提出了一种自适应的Kaczmarz方法,用于解决电阻抗层析成像中的反问题并根据表面上的电学测量确定对象内部的电导率分布。为了最好地刻画未知电导率分布的特征并避免反演雅可比相关项J T J,在大规模问题中,这可能在计算成本和内存方面都非常昂贵,我们建议通过应用最佳电流模式,用于在块Kaczmarz算法的每次迭代之间将实际电导率与电导率估计值区分开。与传统的Kaczmarz和Gauss-Newton类型的方法相比,采用新颖的子集方案,将最佳电流模式生成与Kaczmarz方法适当结合的高效存储重构算法可以自适应地产生更准确和稳定的解决方案。本文讨论了初始电流模式估计的选择。几个重建图像指标用于定量评估仿真结果的性能。

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