EIT中椭圆和方形模型中电极位移误差的评估与消除

A. Javaherian, A. Movafeghi, R. Faghihi
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引用次数: 1

摘要

本研究改进了Tikhonov正则化“最大后检”算法,用于重建电导率变化和电极定位变化,并将该算法用于重建二维椭圆和正方形模型的图像,而不是以往工作中使用的简单圆形模型。该算法由C. Gomez提出,用于补偿图像重建中电极运动引起的误差。通过对电导率和电极定位的摄动,构造了雅可比矩阵。先验图像矩阵应该包含某种增强的电极间定位相关性,以对电导率变化分布和电极运动施加平滑约束。对于每个模型,重构3种情况下的电导率变化图像:a)使用标准算法无电极位移b)使用标准算法有电极位移c)使用本文提出的算法有电极位移。在所有模型中,进行了3个案例的比较。并将各模型的计算结果与其他模型在类似情况下的计算结果进行了比较。本研究的结果将有助于在临床应用中探讨被成像器官的椭圆性效应。此外,模型偏离圆形对重建图像的影响可用于特殊工业应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment and elimination of errors due to electrode displacements in elliptical and square models in EIT
This study modifies a Tikhonov regularized "maximum a posteriori" algorithm proposed for reconstructing both the conductivity changes and electrode positioning variations in EIT and uses this algorithm for reconstructing images of 2d elliptical and square models, instead of simple circular model used in previous works. This algorithm had been proposed By C. Gomez for compensating the errors due to electrode movements in image reconstruction. The jacobian matrix has been constructed via perturbation both conductivity and electrode positioning. The prior image matrix should incorporate some kind of augmented inter-electrode positioning correlations to impose a smoothness constraint on both the conductivity change distribution and electrode movement. For each model, conductivity change image is reconstructed in 3 cases: a) With no electrode displacement using standard algorithm b) With electrode displacement using standard algorithm c) With electrode displacement using proposed algorithm. In all models, a comparison between 3 cases has been implemented. Also, the results obtained from each model have been compared with the other models in similar cases. The results obtained in this study will be useful to investigate the ellipticity effects of organs being imaged in clinical applications. Moreover, the effects of model deviation from circular form on reconstructed images can be used in special industrial applications.
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