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Use of electric field orientation as an index for estimating the contribution of model complexity in transcranial direct current stimulation forward head model development

机译:使用电场方向作为评估模型复杂性对经颅直流电刺激正向头部模型发展的贡献的指标

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The study evaluates the role of human skull composition and brain anisotropy in the context of transcranial direct current stimulation (tDCS) based predictive modeling. Four head models were developed and each proposed attribute (cancellous bone and brain anisotropy) was compared with the isotropic model. By employing a single high-definition montage, the efficacy of each attribute in shaping induced electric field was analyzed by its magnitude and orientation information. Relative error (RE) was used to estimate the variation in field magnitude. It was observed that for a given high-definition montage, the brain anisotropy contributed to 5% change (RE) in the strength of the gray matter (GM) electric field and 10% for the white matter (WM). Inclusion of diploe in the model resulted in 45% variation in the magnitude of the brain electric field. On average, brain anisotropy contributed to field deviations of up to 20 degrees in major WM fiber tracts. Skull heterogeneity caused field deviations of up to 35 degrees in diploe, 15 degrees in subcutaneous fat and marginal variations in brain regions. These simulation results demonstrated the importance of considering refinement in forward models of tDCS, especially; the role of diploe should be considered for more accurate field assessments.
机译:这项研究评估了人类颅骨成分和脑各向异性在基于经颅直流电刺激(tDCS)的预测模型中的作用。开发了四个头部模型,并将每个提议的属性(松质骨和大脑的各向异性)与各向同性模型进行了比较。通过使用单个高清蒙太奇,通过属性的大小和方向信息分析了每个属性在塑造感应电场中的功效。相对误差(RE)用于估计场大小的变化。据观察,对于给定的高清蒙太奇,大脑的各向异性导致灰质(GM)电场强度的5%变化(RE),而白质(WM)的强度变化为10%。在模型中加入二倍体将导致脑电场强度发生45%的变化。平均而言,大脑各向异性在主要WM纤维束中造成的场偏差高达20度。头骨的异质性导致二倍体的视野偏差高达35度,皮下脂肪的视野偏差高达15度,大脑区域的边缘变化最大。这些仿真结果证明了在tDCS的正向模型中考虑改进的重要性,特别是;为了更准确地进行田间评估,应考虑使用diploe的作用。

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