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比较用于时域有限差分法的 SAR 计算算法。

Comparison of SAR calculation algorithms for the finite-difference time-domain method.

机构信息

Department of Radio Science and Engineering, Aalto University, Otakaari 5 A, 02150 Espoo, Finland.

出版信息

Phys Med Biol. 2010 Aug 7;55(15):N421-31. doi: 10.1088/0031-9155/55/15/N03. Epub 2010 Jul 20.

Abstract

Finite-difference time-domain (FDTD) simulations of specific-absorption rate (SAR) have several uncertainty factors. For example, significantly varying SAR values may result from the use of different algorithms for determining the SAR from the FDTD electric field. The objective of this paper is to rigorously study the divergence of SAR values due to different SAR calculation algorithms and to examine if some SAR calculation algorithm should be preferred over others. For this purpose, numerical FDTD results are compared to analytical solutions in a one-dimensional layered model and a three-dimensional spherical object. Additionally, the implications of SAR calculation algorithms for dosimetry of anatomically realistic whole-body models are studied. The results show that the trapezium algorithm-based on the trapezium integration rule-is always conservative compared to the analytic solution, making it a good choice for worst-case exposure assessment. In contrast, the mid-ordinate algorithm-named after the mid-ordinate integration rule-usually underestimates the analytic SAR. The linear algorithm-which is approximately a weighted average of the two-seems to be the most accurate choice overall, typically giving the best fit with the shape of the analytic SAR distribution. For anatomically realistic models, the whole-body SAR difference between different algorithms is relatively independent of the used body model, incident direction and polarization of the plane wave. The main factors affecting the difference are cell size and frequency. The choice of the SAR calculation algorithm is an important simulation parameter in high-frequency FDTD SAR calculations, and it should be explained to allow intercomparison of the results between different studies.

摘要

时域有限差分法(FDTD)对吸收率(SAR)的模拟存在若干不确定性因素。例如,由于 FDTD 电场的 SAR 确定算法不同,SAR 值可能会出现显著差异。本文的目的是严格研究由于不同 SAR 计算算法导致的 SAR 值发散,并检验是否应优先选择某些 SAR 计算算法。为此,在一维分层模型和三维球体模型中,将数值 FDTD 结果与解析解进行了比较。此外,还研究了 SAR 计算算法对解剖学上逼真的全身模型剂量学的影响。结果表明,基于梯形积分规则的梯形算法与解析解相比总是保守的,因此是进行最坏情况暴露评估的良好选择。相比之下,中坐标算法(以中坐标积分规则命名)通常会低估解析 SAR。线性算法(近似于两者的加权平均值)似乎是整体上最准确的选择,通常与解析 SAR 分布的形状拟合得最好。对于解剖学上逼真的模型,不同算法之间的全身 SAR 差异与所使用的人体模型、平面波的入射方向和极化相对独立。影响差异的主要因素是单元尺寸和频率。SAR 计算算法的选择是高频 FDTD SAR 计算中的一个重要模拟参数,应加以说明,以允许不同研究之间的结果进行比较。

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