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A sparsity reconstruction algorithm for electrical capacitance tomography based on modified Landweber iteration

机译:基于改进的Landweber迭代的电容层析成像稀疏重建算法

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摘要

To improve the image quality and reduce the computational cost for electrical capacitance tomography (ECT), a sparsity reconstruction algorithm based on a modified Landweber iteration is presented in this paper. A soft-thresholding function is constructed for permittivity distributions with a continuous phase of low and high permittivity, respectively. An optimal step length is used during the iterative image reconstruction process. The effect of the regularization parameter, the noise level in data, and the permittivity distribution on the performance of the proposed algorithm is discussed according to the correlation coefficient. The modified Landweber iteration with a zero regularization parameter is also implemented for comparison. Simulation and experimental studies were carried out and the corresponding computational costs were estimated, showing the sparsity reconstruction outperforms the Landweber iteration.
机译:为了提高图像质量并减少电容层析成像(ECT)的计算成本,提出了一种基于改进的Landweber迭代的稀疏重建算法。构造软阈值函数分别用于具有低和高介电常数的连续相位的介电常数分布。在迭代图像重建过程中使用最佳步长。根据相关系数,讨论了正则化参数,数据中的噪声水平以及介电常数分布对算法性能的影响。带有零正则化参数的经过修改的Landweber迭代也可用于比较。进行了仿真和实验研究,并估算了相应的计算成本,表明稀疏重建优于Landweber迭代。

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