Comparison of Reconstruction Algorithms for Brain Stroke Microwave Imaging

Valeria Mariano, J. T. Vásquez, R. Scapaticci, L. Crocco, P. Kosmas, F. Vipiana
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引用次数: 3

Abstract

The aim of this paper is to describe and compare the performances of three image reconstruction algorithms that can be used for brain stroke microwave imaging. The algorithms belong to the class of non-linear iterative algorithms and are capable of providing a quantitative map of the imaged scenario. The first algorithm is the Contrast Source Inversion (CSI) method, which uses the Finite Element Method (FEM) to discretize the domain of interest. The second one is the Subspace-Based Optimization Method (SOM) that has some properties in common with the CSI method, and it also uses FEM to discretize the domain. The last one is the Distorted Born Iterative Method with the inverse solver Two-step Iterative Shrinkage/Thresholding (DBIM-TwIST), which exploits the forward Finite Difference Time Domain (FDTD) solver. The reconstruction examples are created with 3-D synthetic data modelling realistic brain tissues with the presence of a blood region, representing the stroke area in the brain, whereas the inversion step is carried out using a 2-D model.
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脑卒中微波成像重建算法的比较
本文的目的是描述和比较三种可用于脑卒中微波成像的图像重建算法的性能。该算法属于非线性迭代算法,能够提供图像场景的定量映射。第一种算法是对比源反演(CSI)方法,该方法使用有限元法(FEM)将感兴趣的域离散化。第二种方法是基于子空间的优化方法(SOM),该方法与CSI方法有一些共同的特性,并且使用有限元方法对域进行离散化。最后一种是利用前向时域有限差分(FDTD)求解器,采用逆求解器两步迭代收缩/阈值法(DBIM-TwIST)的畸变Born迭代法。重建示例使用三维合成数据建模真实脑组织,其中存在血液区域,代表大脑中的中风区域,而反演步骤使用二维模型进行。
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