首页> 外文会议>Conference on Biomedical Photonics and Optoelectronic Imaging 8-10 November 2000 Beijing, China >A new image reconstruction method for electrical impedance tomography
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A new image reconstruction method for electrical impedance tomography

机译:电阻抗层析成像的新图像重建方法

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Electrical impedance tomography(EIT) is a functional imaging technique, which has potential application prospect in clinical diagnosis. It is well known that image reconstruction in EIT is a highly ill-posed, non-linear inverse problem. So far, various reconstruction methods have been used in EIT is a highly ill-posed, non-linear inverse problem. So far, various reconstruction methods have been used in EIT, among which the Newton-Raphson mehtod is regarded as the most effective one, but it suffers the mathematical difficulty and the low resolution of the reconstruction which is far from the requirement of clinical application. In this paper, a quite different image reconstruction method for EIT is presented to solve the above problems. In the new method, a neural network such as BP is used to sovle the non-linear inverse problem between the mpedance variations inside body and the voltage changes measured at its surface with no need of computation of potential fields. The training sets of neural network are chosen from the solution of the forward problem of EIT in which finite element method (FEM) is used. After the non-linear relation function has been decided, the staic image reconstruction can be accomplished by iteratively solving the forward problem with FEM until the voltage difference between measurement and calculation or impedance change is small enough. The provided method avoids calculating Jacobian matrix and solvign ill-conditioned equations. Furthermore the resolution of the reconstructed images based on the new method is much more higher than other mehtods with the same numbers of electrode and electrical current pattern. The computer simulation results demonstrate that the new reconstruction algorithm can be converged very quickly with a priori knowledge.
机译:电阻抗层析成像技术是一种功能成像技术,在临床诊断中具有潜在的应用前景。众所周知,EIT中的图像重建是一个病态严重的非线性逆问题。到目前为止,在EIT中已使用了多种重构方法,这是一个病态严重的非线性逆问题。迄今为止,在EIT中已经使用了多种重建方法,其中牛顿-拉夫森方法被认为是最有效的方法,但是它存在数学上的困难和重建的低分辨率,这远远超出了临床应用的要求。本文提出了一种完全不同的EIT图像重建方法来解决上述问题。在新方法中,使用了诸如BP之类的神经网络来解决体内弹跳变化与在其表面测得的电压变化之间的非线性逆问题,而无需计算势场。神经网络的训练集是从使用有限元方法(EEM)的EIT正向问题的解决方案中选择的。在确定了非线性关系函数之后,可以通过用有限元法迭代解决正向问题,直到测量和计算之间的电压差或阻抗变化足够小,来完成空间图像重建。所提供的方法避免了计算雅可比矩阵和可溶病态方程。此外,基于新方法的重建图像的分辨率比具有相同数量电极和电流模式的其他方法要高得多。计算机仿真结果表明,利用先验知识可以快速收敛新的重构算法。

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