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基于参数水平集的电阻抗断层成像方法。

A Parametric Level Set Method for Electrical Impedance Tomography.

出版信息

IEEE Trans Med Imaging. 2018 Feb;37(2):451-460. doi: 10.1109/TMI.2017.2756078. Epub 2017 Sep 25.

Abstract

This paper presents an image reconstruction method based on parametric level set (PLS) method using electrical impedance tomography. The conductivity to be reconstructed was assumed to be piecewise constant and the geometry of the anomaly was represented by a shape-based PLS function, which we represent using Gaussian radial basis functions (GRBF). The representation of the PLS function significantly reduces the number of unknowns, and circumvents many difficulties that are associated with traditional level set (TLS) methods, such as regularization, re-initialization and use of signed distance function. PLS reconstruction results shown in this article are some of the first ones using experimental EIT data. The performance of the PLS method was tested with water tank data for two-phase visualization and with simulations which demonstrate the most popular biomedical application of EIT: lung imaging. In addition, robustness studies of the PLS method w.r.t width of the Gaussian function and GRBF centers were performed on simulated lung imaging data. The experimental and simulation results show that PLS method has significant improvement in image quality compared with the TLS reconstruction.

摘要

本文提出了一种基于参数水平集 (PLS) 方法的图像重建方法,该方法利用电阻抗断层成像技术。所重建的电导率被假设为分段常数,异常的几何形状由基于形状的 PLS 函数表示,我们使用高斯径向基函数 (GRBF) 表示。PLS 函数的表示显著减少了未知变量的数量,并避免了传统水平集 (TLS) 方法中存在的许多困难,如正则化、重新初始化和使用符号距离函数。本文展示的 PLS 重建结果是使用实验性 EIT 数据得到的首批结果之一。使用水箱数据进行两相可视化以及模拟实验对 PLS 方法的性能进行了测试,模拟实验演示了 EIT 最受欢迎的生物医学应用:肺部成像。此外,还在模拟肺部成像数据上对 PLS 方法关于高斯函数宽度和 GRBF 中心的稳健性进行了研究。实验和模拟结果表明,与 TLS 重建相比,PLS 方法在图像质量方面有显著提高。

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