Electrical & Computer Engineering Department, Worcester Polytechnic Institute, Worcester, MA 01609 United States of America. Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02115 United States of America. Author to whom any correspondence should be addressed.
J Neural Eng. 2020 Aug 4;17(4):046023. doi: 10.1088/1741-2552/ab85b3.
To present and disseminate our transcranial magnetic stimulation (TMS) modeling software toolkit, including several new algorithmic developments, and to apply this software to realistic TMS modeling scenarios given a high-resolution model of the human head including cortical geometry and an accurate coil model.
The recently developed charge-based boundary element fast multipole method (BEM-FMM) is employed as an alternative to the 1st order finite element method (FEM) most commonly used today. The BEM-FMM approach provides high accuracy and unconstrained numerical field resolution close to and across cortical interfaces. Here, the previously proposed BEM-FMM algorithm has been improved in several novel ways.
The improvements resulted in a threefold increase in computational speed while maintaining the same solution accuracy. The computational code based on the MATLAB® platform is made available to all interested researchers, along with a coil model repository and examples to create custom coils, head model repository, and supporting documentation. The presented software toolkit may be useful for post-hoc analyses of navigated TMS data using high-resolution subject-specific head models as well as accurate and fast modeling for the purposes of TMS coil/hardware development.
TMS is currently the only non-invasive neurostimulation modality that enables painless and safe supra-threshold stimulation by employing electromagnetic induction to efficiently penetrate the skull. Accurate, fast, and high resolution modeling of the electric fields may significantly improve individualized targeting and dosing of TMS and therefore enhance the efficiency of existing clinical protocols as well as help establish new application domains.
介绍和传播我们的经颅磁刺激 (TMS) 建模软件工具包,包括一些新的算法开发,并将该软件应用于具有人类头部高分辨率模型(包括皮质几何形状和精确线圈模型)的现实 TMS 建模场景。
最近开发的基于电荷的边界元快速多极方法 (BEM-FMM) 被用作当今最常用的一阶有限元方法 (FEM) 的替代方法。BEM-FMM 方法提供了高精度和不受限制的数值场分辨率,接近和跨越皮质界面。在这里,先前提出的 BEM-FMM 算法在几个新颖方面得到了改进。
改进后的算法在保持相同的求解精度的同时,计算速度提高了三倍。基于 MATLAB®平台的计算代码以及线圈模型库和创建自定义线圈的示例、头部模型库以及支持文档都提供给所有感兴趣的研究人员。所提出的软件工具包可用于使用高分辨率的个体特定头部模型对导航 TMS 数据进行事后分析,以及用于 TMS 线圈/硬件开发的准确和快速建模。
TMS 是目前唯一的非侵入性神经刺激模式,通过利用电磁感应来无痛且安全地进行阈上刺激,从而有效地穿透颅骨。电场的精确、快速和高分辨率建模可以显著提高 TMS 的个体化靶向和剂量,从而提高现有临床方案的效率,并帮助建立新的应用领域。