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Incorporating a Spatial Prior into Nonlinear D-Bar EIT Imaging for Complex Admittivities

机译:将空间先验纳入非线性D-Bar EIT成像以实现复杂的电容率

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摘要

Electrical Impedance Tomography (EIT) aims to recover the internal conductivity and permittivity distributions of a body from electrical measurements taken on electrodes on the surface of the body. The reconstruction task is a severely ill-posed nonlinear inverse problem that is highly sensitive to measurement noise and modeling errors. Regularized D-bar methods have shown great promise in producing noise-robust algorithms by employing a low-pass filterin of nonlinear (nonphysical) Fourier transform data specifi to the EIT problem. Including prior data with the approximate locations of major organ boundaries in the scattering transform provides a means of extending the radius of the low-pass filte to include higher frequency components in the reconstruction, in particular, features that are known with high confidence This information is additionally included in the system of D-bar equations with an independent regularization parameter from that of the extended scattering transform. In this paper, this approach is used in the 2-D D-bar method for admittivity (conductivity as well as permittivity) EIT imaging. Noise-robust reconstructions are presented for simulated EIT data on chest-shaped phantoms with a simulated pneumothorax and pleural effusion. No assumption of the pathology is used in the construction of the prior, yet the method still produces significant enhancements of the underlying pathology (pneumothorax or pleural effusion) even in the presence of strong noise.
机译:电阻层析成像(EIT)的目的是根据对人体表面电极的电学测量来恢复人体的内部电导率和介电常数分布。重建任务是一个病态严重的非线性逆问题,对测量噪声和建模误差高度敏感。通过针对EIT问题使用非线性(非物理)傅立叶变换数据的低通滤波器,正则化D-bar方法在产生鲁棒性算法方面显示出了巨大的希望。在散射变换中将先前数据与主要器官边界的近似位置包括在内,提供了一种方法,可以扩展低通滤波器的半径,以在重建中包括更高频率的分量,尤其是具有高置信度的已知特征。 D-bar方程组中还包含独立的正则化参数,该参数与扩展散射变换的正则化参数无关。在本文中,此方法在2-D D-bar方法中用于介电常数(电导率和介电常数)EIT成像。噪声鲁棒的重建提出了模拟的气胸和胸腔积液的胸形体模上的模拟EIT数据。在先验的构造中没有使用病理学的假设,但是即使在存在强烈噪声的情况下,该方法仍然产生潜在病理学的显着增强(气胸或胸腔积液)。

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