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本文引用的文献

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NOSER: An Algorithm for Solving the Inverse Conductivity Problem.NOSER:一种求解电导率反问题的算法。
Int J Imaging Syst Technol. 1990 Summer;2(2):66-75. doi: 10.1002/ima.1850020203.
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Distinguishability of conductivities by electric current computed tomography.电流型计算机断层扫描对电导率的可区分性。
IEEE Trans Med Imaging. 1986;5(2):91-5. doi: 10.1109/TMI.1986.4307752.
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An electrical impedance spectroscopy system for breast cancer detection.一种用于乳腺癌检测的电阻抗光谱系统。
Annu Int Conf IEEE Eng Med Biol Soc. 2007;2007:4154-7. doi: 10.1109/IEMBS.2007.4353251.
4
The complete electrode model for EIT in a mammography geometry.用于乳腺X线摄影几何结构中电阻抗断层成像的完整电极模型。
Physiol Meas. 2007 Jul;28(7):S57-69. doi: 10.1088/0967-3334/28/7/S05. Epub 2007 Jun 26.
5
A compensated radiolucent electrode array for combined EIT and mammography.一种用于电阻抗断层成像(EIT)与乳腺X线摄影联合检查的补偿型透X线电极阵列。
Physiol Meas. 2007 Jul;28(7):S291-9. doi: 10.1088/0967-3334/28/7/S22. Epub 2007 Jun 26.
6
Reproducibility of regional lung ventilation distribution determined by electrical impedance tomography during mechanical ventilation.机械通气期间通过电阻抗断层扫描测定的局部肺通气分布的可重复性
Physiol Meas. 2007 Jul;28(7):S261-7. doi: 10.1088/0967-3334/28/7/S19. Epub 2007 Jun 26.
7
A reconstruction algorithm for breast cancer imaging with electrical impedance tomography in mammography geometry.一种用于乳腺钼靶摄影几何结构中电阻抗断层成像的乳腺癌成像重建算法。
IEEE Trans Biomed Eng. 2007 Apr;54(4):700-10. doi: 10.1109/TBME.2006.890139.
8
Multi-frequency electrical impedance tomography of the breast: new clinical results.乳腺多频电阻抗断层成像:新的临床结果
Physiol Meas. 2004 Feb;25(1):301-14. doi: 10.1088/0967-3334/25/1/034.
9
Accounting for erroneous electrode data in electrical impedance tomography.
Physiol Meas. 2004 Feb;25(1):227-38. doi: 10.1088/0967-3334/25/1/028.
10
Distinguishability of inhomogeneities using planar electrode arrays and different patterns of applied excitation.使用平面电极阵列和不同施加激励模式区分不均匀性
Physiol Meas. 2003 May;24(2):403-11. doi: 10.1088/0967-3334/24/2/352.

用于补偿 EIT 中可变电极接触的方法。

Methods for compensating for variable electrode contact in EIT.

机构信息

Information Sciences Institute, University of Southern California, Arlington, VA 22203, USA.

出版信息

IEEE Trans Biomed Eng. 2009 Dec;56(12):2762-72. doi: 10.1109/TBME.2009.2027129. Epub 2009 Jul 21.

DOI:10.1109/TBME.2009.2027129
PMID:19628445
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2862904/
Abstract

Electrical impedance tomography (EIT) is an imaging modality that currently shows promise for the detection and characterization of breast cancer. A very significant problem in EIT imaging is the proper modeling of the interface between the body and the electrodes. We have found empirically that it is very difficult, in a clinical setting, to assure that all electrodes make satisfactory contact with the body. In addition, we have observed a capacitive effect at the skin/electrode boundary that is spatially heterogeneous. To compensate for these problems, we have developed a hybrid nonlinear-linear reconstruction algorithm using the complete electrode model in which we first estimate electrode surface impedances, by means of a Levenberg-Marquardt iterative optimization procedure with an analytically computed Jacobian matrix. We, subsequently, use a linearized algorithm to perform a 3-D reconstruction of perturbations in both contact impedances, and in the spatial distributions of conductivity and permittivity. Results show that, with this procedure, artifacts due to electrodes making poor contact can be greatly reduced. If the experimental apparatus physically applies voltages and measures currents, we show that it is preferable to compute the reconstruction with respect to the Dirichlet-to-Neumann map rather than the Neumann-to-Dirichlet map if there is a significant possibility that electrodes will be fully disconnected. Finally, we test our electrode compensation algorithms for a set of clinical data, showing that we can significantly improve the fit of our model to the measurements by allowing the electrode surface impedances to vary.

摘要

电阻抗断层成像(EIT)是一种成像方式,目前在乳腺癌的检测和特征描述方面显示出很大的潜力。EIT 成像中的一个非常重要的问题是正确模拟身体和电极之间的界面。我们从经验中发现,在临床环境中,很难确保所有电极都与身体有令人满意的接触。此外,我们观察到皮肤/电极边界处存在空间不均匀的电容效应。为了解决这些问题,我们开发了一种混合非线性-线性重建算法,使用完整的电极模型,我们首先通过使用带有解析计算雅可比矩阵的 Levenberg-Marquardt 迭代优化过程来估计电极表面阻抗。随后,我们使用线性化算法来执行接触阻抗和电导率和介电常数空间分布的三维重建。结果表明,通过这种方法,可以大大减少由于电极接触不良而产生的伪影。如果实验装置物理上施加电压并测量电流,我们表明,如果电极完全断开的可能性很大,则最好相对于狄利克雷-诺伊曼映射而不是诺伊曼-狄利克雷映射来计算重建。最后,我们对一组临床数据进行了电极补偿算法测试,表明通过允许电极表面阻抗发生变化,我们可以显著改善模型对测量值的拟合程度。