论文标题

分割精度在结构MR头部扫描中对TM和TES电场计算的影响

Influence of segmentation accuracy in structural MR head scans on electric field computation for TMS and tES

论文作者

Rashed, Essam A., Gomez-Tames, Jose, Hirata, Akimasa

论文摘要

在基于电刺激效果的几种诊断和治疗程序中,与刺激相关的内部物理量是诱导的电场。为了估计单个人类模型中诱导的电场,需要对相应的身体部位将相应身体部位分为组织的解剖成像进行分割。然后,与不同的注释组织相关的电气特性被分配到数字模型中以产生数字问题。开放量的电源是不同的,该域名的电源是不同的,我们对不同的组织进行了分析,该分布分配了该分配,该分布分配了该分配,该分配是分配的。将不同的组织分割为使用深度学习的神经网络架构的不同质量,然后将诱导的电场命名。 (GM)和跨颅电刺激(TES)(TES)的白色物质(TES)在两种应用中均降低了归一部分的趋势,从而降低了5%对于TMS和TES,在CSF和GM之间发现了电场变化。

In several diagnosis and therapy procedures based on electrostimulation effect, the internal physical quantity related to the stimulation is the induced electric field. To estimate the induced electric field in an individual human model, the segmentation of anatomical imaging, such as (magnetic resonance image (MRI) scans, of the corresponding body parts into tissues is required. Then, electrical properties associated with different annotated tissues are assigned to the digital model to generate a volume conductor. An open question is how segmentation accuracy of different tissues would influence the distribution of the induced electric field. In this study, we applied parametric segmentation of different tissues to exploit the segmentation of available MRI to generate different quality of head models using deep learning neural network architecture, named ForkNet. Then, the induced electric field are compared to assess the effect of model segmentation variations. Computational results indicate that the influence of segmentation error is tissue-dependent. In brain, sensitivity to segmentation accuracy is relatively high in cerebrospinal fluid (CSF), moderate in gray matter (GM) and low in white matter for transcranial magnetic stimulation (TMS) and transcranial electrical stimulation (tES). A CSF segmentation accuracy reduction of 10% in terms of Dice coefficient (DC) lead to decrease up to 4% in normalized induced electric field in both applications. However, a GM segmentation accuracy reduction of 5.6% DC leads to increase of normalized induced electric field up to 6%. Opposite trend of electric field variation was found between CSF and GM for both TMS and tES. The finding obtained here would be useful to quantify potential uncertainty of computational results.

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