BioElectromagnetic Group, Applied Electromagnetics Laboratory, Department of Electrical Engineering, Iran University of Science and Technology, Tehran, 16846-13114, Iran.
Med Biol Eng Comput. 2018 Jan;56(1):13-23. doi: 10.1007/s11517-017-1663-5. Epub 2017 Jun 29.
Deep transcranial magnetic stimulation (dTMS) plays an important role in the treatment of many diseases. Previous designs rarely considered the direction of the induced electric field (E) with respect to nerve fibers. However, it can be observed from related formulae that the tangential component of E (E ) has a more significant role in the stimulation of nerve cells. In this paper, a new approach is proposed for designing a single-source coil array (CA) by combining tractography and the reciprocity theorem (RT). This method is a non-iterative procedure that can directly design CAs for the stimulation of each desired target zone without any complicated and slow iterative algorithm. Specifications of CA such as the optimum spatial angle and the best placement of coils are important because the location of the coil around the head and its spatial angle have been shown to have a major effect on induced E. Adoption of the RT yields the optimum specifications of CA and maximum E at the stimulation zone. This novel technique can introduce a new approach for the application of CA since it entails a high flexibility, high speed, and good accuracy.
深度经颅磁刺激(dTMS)在许多疾病的治疗中发挥着重要作用。以往的设计很少考虑诱导电场(E)相对于神经纤维的方向。然而,从相关公式中可以观察到,E 的切向分量(E )在刺激神经细胞方面起着更重要的作用。在本文中,通过结合示踪技术和互易定理(RT),提出了一种设计单源线圈阵列(CA)的新方法。该方法是一种非迭代过程,可以直接为每个所需目标区域的刺激设计 CA,而无需任何复杂和缓慢的迭代算法。CA 的规格,如最佳空间角度和线圈的最佳放置位置非常重要,因为线圈在头部周围的位置及其空间角度已被证明对感应 E 有重大影响。采用 RT 可获得 CA 的最佳规格和刺激区域的最大 E 。由于具有高度的灵活性、高速和良好的准确性,这项新技术可以为 CA 的应用带来新的方法。