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Finite-element analysis of microwave scattering from a three-dimensional human head model for brain stroke detection

机译:用于脑卒中检测的三维人体头部模型中微波散射的有限元分析

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摘要

In this paper, a detailed analysis of microwave (MW) scattering from a three-dimensional (3D) anthropomorphic human head model is presented. It is the first time that the finite-element method (FEM) has been deployed to study the MW scattering phenomenon of a 3D realistic head model for brain stroke detection. A major contribution of this paper is to add anatomically more realistic details to the human head model compared with the literature available to date. Using the MRI database, a 3D numerical head model was developed and segmented into 21 different types through a novel tissue-mapping scheme and a mixed-model approach. The heterogeneous and frequency-dispersive dielectric properties were assigned to brain tissues using the same mapping technique. To mimic the simulation set-up, an eight-elements antenna array around the head model was designed using dipole antennae. Two types of brain stroke (haemorrhagic and ischaemic) at various locations inside the head model were then analysed for possible detection and classification. The transmitted and backscattered signals were calculated by finding out the solution of the Helmholtz wave equation in the frequency domain using the FEM. FE mesh convergence analysis for electric field values and comparison between different types of iterative solver were also performed to obtain error-free results in minimal computational time. At the end, specific absorption rate analysis was conducted to examine the ionization effects of MW signals to a 3D human head model. Through computer simulations, it is foreseen that MW imaging may efficiently be exploited to locate and differentiate two types of brain stroke by detecting abnormal tissues’ dielectric properties. A significant contrast between electric field values of the normal and stroke-affected brain tissues was observed at the stroke location. This is a step towards generating MW scattering information for the development of an efficient image reconstruction algorithm.
机译:在本文中,将对三维(3D)拟人化人体头部模型中的微波(MW)散射进行详细分析。这是第一次使用有限元方法(FEM)来研究用于脑卒中检测的3D现实头部模型的MW散射现象。与迄今可用的文献相比,本文的主要贡献是在解剖学上向人头模型添加了更现实的细节。使用MRI数据库,开发了3D数字头部模型,并通过新颖的组织映射方案和混合模型方法将其分为21种不同类型。使用相同的映射技术将异质和频率分散的介电特性分配给脑组织。为了模拟仿真设置,使用偶极天线设计了围绕头部模型的八元素天线阵列。然后分析了头部模型内部各个位置的两种类型的脑卒中(出血性和缺血性),以进行可能的检测和分类。通过使用FEM在频域中找出亥姆霍兹波方程的解,可以计算出传输和反向散射的信号。还对电场值进行了有限元网格收敛分析,并在不同类型的迭代求解器之间进行了比较,以在最短的计算时间内获得无误差的结果。最后,进行了特定吸收率分析,以检查MW信号对3D人体头部模型的电离作用。通过计算机模拟,可以预见,通过检测异常组织的介电特性,可以有效利用MW成像来定位和区分两种类型的脑卒中。在中风部位观察到正常和受中风影响的脑组织的电场值之间存在显着差异。这是朝着生成MW散射信息以开发有效的图像重建算法迈出的一步。

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