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首页> 外文期刊>Neural Networks: The Official Journal of the International Neural Network Society >End-to-end semantic segmentation of personalized deep brain structures for non-invasive brain stimulation
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End-to-end semantic segmentation of personalized deep brain structures for non-invasive brain stimulation

机译:非侵入性脑刺激的个性化深脑结构的端到端语义分割

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摘要

Electro-stimulation or modulation of deep brain regions is commonly used in clinical procedures for the treatment of several nervous system disorders. In particular, transcranial direct current stimulation (tDCS) is widely used as an affordable clinical application that is applied through electrodes attached to the scalp. However, it is difficult to determine the amount and distribution of the electric field (EF) in the different brain regions due to anatomical complexity and high inter-subject variability. Personalized tDCS is an emerging clinical procedure that is used to tolerate electrode montage for accurate targeting. This procedure is guided by computational head models generated from anatomical images such as MRI. Distribution of the EF in segmented head models can be calculated through simulation studies. Therefore, fast, accurate, and feasible segmentation of different brain structures would lead to a better adjustment for customized tDCS studies.
机译:深脑区的电刺激或调制通常用于治疗几种神经系统疾病的临床手术。 特别地,经颅直流刺激(TDC)被广泛用作经济适用的临床应用,其通过附着在头皮上的电极施加。 然而,由于解剖学复杂性和高对象间可变性,难以确定不同脑区中电场(EF)的量和分布。 个性化TDC是一种新兴临床程序,用于耐受电极蒙太奇以准确靶向。 该过程由从诸如MRI的解剖图像产生的计算头模型引导。 通过仿真研究可以计算分段头模型中EF的分布。 因此,不同脑结构的快速,准确和可行的分割将导致定制TDCS研究更好地调整。

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