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首页> 外文期刊>IEEE Transactions on Medical Imaging >A neural network image reconstruction technique for electrical impedance tomography
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A neural network image reconstruction technique for electrical impedance tomography

机译:用于电阻抗层析成像的神经网络图像重建技术

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摘要

Reconstruction of images in electrical impedance tomography requires the solution of a nonlinear inverse problem on noisy data. This problem is typically ill-conditioned and requires either simplifying assumptions or regularization based on a priori knowledge. The authors present a reconstruction algorithm using neural network techniques which calculates a linear approximation of the inverse problem directly from finite element simulations of the forward problem. This inverse is adapted to the geometry of the medium and the signal-to-noise ratio (SNR) used during network training. Results show good conductivity reconstruction where measurement SNR is similar to the training conditions. The advantages of this method are its conceptual simplicity and ease of implementation, and the ability to control the compromise between the noise performance and resolution of the image reconstruction.
机译:在电阻抗断层扫描中重建图像需要解决噪声数据上的非线性逆问题。这个问题通常是病态的,需要根据先验知识简化假设或进行正则化。作者提出了一种使用神经网络技术的重构算法,该算法直接从正向问题的有限元模拟中计算反问题的线性近似。该逆适用于网络训练期间使用的介质的几何形状和信噪比(SNR)。结果显示出良好的电导率重建,其中测量SNR与训练条件相似。该方法的优点是它的概念简单和易于实施,以及控制噪声性能和图像重建分辨率之间折衷的能力。

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