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A genetic algorithm for optimizing multi-pole Debye models of tissue dielectric properties

机译:优化组织介电特性的多极德拜模型的遗传算法

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摘要

Models of tissue dielectric properties (permittivity and conductivity) enable the interactions of tissues and electromagnetic fields to be simulated, which has many useful applications in microwave imaging, radio propagation, and non-ionizing radiation dosimetry. Parametric formulae are available, based on a multi-pole model of tissue dispersions, but although they give the dielectric properties over a wide frequency range, they do not convert easily to the time domain. An alternative is the multi-pole Debye model which works well in both time and frequency domains. Genetic algorithms are an evolutionary approach to optimization, and we found that this technique was effective at finding the best values of the multi-Debye parameters. Our genetic algorithm optimized these parameters to fit to either a Cole-Cole model or to measured data, and worked well over wide or narrow frequency ranges. Over 10Hz-10GHz the best fits for muscle, fat or bone were each found for ten dispersions or poles in the multi-Debye model. The genetic algorithm is a fast and effective method of developing tissue models that compares favourably with alternatives such as the rational polynomial fit.
机译:组织介电特性(介电常数和电导率)模型可以模拟组织和电磁场的相互作用,这在微波成像,无线电传播和非电离辐射剂量测定中具有许多有用的应用。基于组织分散的多极模型,可以使用参数公式,但是尽管它们在很宽的频率范围内都具有介电特性,但它们并不容易转换为时域。另一种选择是多极点德拜模型,该模型在时域和频域均适用。遗传算法是一种优化的进化方法,我们发现该技术可以有效地找到多德拜参数的最佳值。我们的遗传算法对这些参数进行了优化,以适合Cole-Cole模型或测量数据,并在宽或窄频率范围内都能很好地工作。在多德拜模型中,发现在10Hz-10GHz以上的频率,肌肉,脂肪或骨骼最适合十个色散或极点。遗传算法是一种快速有效的开发组织模型的方法,与有理多项式拟合等替代方法相比具有优势。

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