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A Regularized Electric Flux Volume Integral Equation for Brain Imaging

机译:脑成像的正数电量容积整体方程

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Volume integral equations for modeling biological tissues in the frequency domain typically suffer from ill-conditioning for high dielectric contrasts and low frequencies. These conditioning breakdowns severely compromise the accuracy and applicability of these models and render them impractical despite their numerous advantages. In this work, we present an electric flux volume integral equation (D-VIE) free from these shortcomings when computed on biologically compatible simply connected objects. This new formulation leverages on careful spectral analysis to obtain volume quasi-Helmholtz projectors capable of curing both sources of ill-conditioning. In particular, the normalization of the projectors by the material permittivity allows for an inhomogeneous re-scaling of the equation which stabilises the high contrast breakdown together with the low-frequency breakdown. Numerical results show the applicability of this new formulation in realistic brain imaging.
机译:用于建模频域中生物组织的体积积分方程通常遭受高介质对比度和低频的不良状态。这些调节故障严重损害了这些模型的准确性和适用性,尽管有许多优点,但尽管有许多优势,但它们使它们不切实际。在这项工作中,我们在在生物学兼容的简单连接的对象上计算时,我们提供了一种无线电量积分方程(D-VIE)。这种新的配方利用仔细的光谱分析,以获得能够固化不良调节来源的批量准亥姆霍兹投影仪。特别地,通过材料介电常数的投影仪的归一化允许与低频击穿一起稳定高对比度击穿的等式的不均匀重新缩放。数值结果表明了这种新配方在现实脑成像中的适用性。

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