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首页> 外文期刊>Transactions of the Institute of Measurement and Control >An image reconstruction algorithm for electrical impedance tomography using Symkaczmarz based on structured sparse representation
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An image reconstruction algorithm for electrical impedance tomography using Symkaczmarz based on structured sparse representation

机译:基于结构稀疏表示的Symkaczmarz的电阻抗断层扫描图像重建算法

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摘要

Electrical impedance tomography (EIT) is a new medical imaging technology that is used to estimate changes in the internal conductivity based on measurements of the border voltage disturbance. However, the generalized inverse operator of image reconstruction for EIT is ill-posed and ill-conditioned. In order to improve reconstruction quality, the structured sparse representation is integrated into the iterative process of the Symkaczmarz algorithm for EIT image reconstruction in this paper. The sparsity prior and the underlying structure characteristics of conductivity reconstruction are considered in the proposed algorithm. Both simulation and experiment results indicate that the proposed method has feasibility for pulmonary ventilation imaging and great potential for improving the image quality.
机译:电阻抗断层扫描(EIT)是一种新的医学成像技术,用于基于边界电压干扰的测量来估计内部电导率的变化。 然而,EIT的图像重建的广义逆转录器是不良且病态的。 为了提高重建质量,结构化稀疏表示被集成到本文中EIT图像重建的Symkaczmarz算法的迭代过程中。 在所提出的算法中考虑了导电性重建的稀疏性和底层结构特征。 仿真和实验结果均表明该方法具有肺通气成像的可行性和改善图像质量的巨大潜力。

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