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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Numerical Analysis and Design of Single-Source Multicoil TMS for Deep and Focused Brain Stimulation
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Numerical Analysis and Design of Single-Source Multicoil TMS for Deep and Focused Brain Stimulation

机译:用于深部和集中式脑部刺激的单源多线圈TMS的数值分析和设计

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摘要

Transcranial magnetic stimulation (TMS) is a tool for noninvasive stimulation of neuronal tissue used for research in cognitive neuroscience and to treat neurological disorders. Many TMS applications call for large electric fields to be sharply focused on regions that often lie deep inside the brain. Unfortunately, the fields generated by present-day TMS coils diffuse and decay rapidly as they penetrate into the head. As a result, they tend to stimulate relatively large regions of tissue near the brain surface. Earlier studies suggested that a focused TMS excitation can be attained using multiple nonuniformly fed coils in a multichannel array. We propose a systematic, genetic algorithm-based technique for synthesizing multichannel arrays that minimize the volume of the excited region required to achieve a prescribed penetration depth and maintain realistic values for the input driving currents. Because multichannel arrays are costly to build, we also propose a method to convert the multichannel arrays into single-channel ones while minimally materially deteriorating performance. Numerical results show that the new multi- and single-channel arrays stimulate tissue 2.4 cm into the head while exciting 3.0 and 2.6 times less volume than conventional Figure-8 coils, respectively.
机译:经颅磁刺激(TMS)是非侵入性刺激神经元组织的工具,用于认知神经科学研究和神经系统疾病的治疗。许多TMS应用程序要求大电场将焦点集中在经常位于大脑内部的区域。不幸的是,当今的TMS线圈产生的磁场在穿透头部时会迅速扩散和衰减。结果,它们倾向于刺激大脑表面附近较大的组织区域。较早的研究表明,使用多通道阵列中的多个非均匀馈电线圈可以获得集中的TMS激励。我们提出了一种基于遗传算法的系统技术,用于合成多通道阵列,该技术可最大限度地减少达到规定的穿透深度并保持输入驱动电流的实际值所需的受激区域的体积。由于多通道阵列的建造成本很高,因此我们还提出了一种在将性能大幅降低的同时将多通道阵列转换为单通道阵列的方法。数值结果表明,新的多通道和单通道阵列可将组织刺激到头部2.4 cm,同时分别比传统的Figure-8线圈少激发3.0和2.6倍的体积。

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