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颅骨缝、海绵状骨分布和老化颅骨电导率对 EEG 正、逆问题的影响。

Impact of skull sutures, spongiform bone distribution, and aging skull conductivities on the EEG forward and inverse problems.

机构信息

School of Physics and Astronomy, Cardiff University, Cardiff, United Kingdom.

Cardiff University Brain Research Imaging Centre (CUBRIC), Cardiff, United Kingdom.

出版信息

J Neural Eng. 2022 Feb 1;19(1). doi: 10.1088/1741-2552/ac43f7.

Abstract

. Source imaging is a principal objective for electroencephalography (EEG), the solutions of which require forward problem (FP) computations characterising the electric potential distribution on the scalp due to known sources. Additionally, the EEG-FP is dependent upon realistic, anatomically correct volume conductors and accurate tissue conductivities, where the skull is particularly important. Skull conductivity, however, deviates according to bone composition and the presence of adult sutures. The presented study therefore analyses the effect the presence of adult sutures and differing bone composition have on the EEG-FP and inverse problem (IP) solutions.. Utilising a well-established head atlas, detailed head models were generated including compact and spongiform bone and adult sutures. The true skull conductivity was considered as inhomogeneous according to spongiform bone proportion and sutures. The EEG-FP and EEG-IP were solved and compared to results employing homogeneous skull models, with varying conductivities and omitting sutures, as well as using a hypothesised aging skull conductivity model.. Significant localised FP errors, with relative error up to 85%, were revealed, particularly evident along suture lines and directly related to the proportion of spongiform bone. This remained evident at various ages. Similar EEG-IP inaccuracies were found, with the largest (maximum 4.14 cm) across suture lines.. It is concluded that modelling the skull as an inhomogeneous layer that varies according to spongiform bone proportion and includes differing suture conductivity is imperative for accurate EEG-FP and source localisation calculations. Their omission can result in significant errors, relevant for EEG research and clinical diagnosis.

摘要

源成像(Source imaging)是脑电图(EEG)的主要目标,其解决方案需要进行正问题(FP)计算,以描述由于已知源而在头皮上的电势分布。此外,EEG-FP 取决于现实的、解剖正确的容积导体和准确的组织电导率,颅骨在这方面尤其重要。然而,颅骨电导率会因骨成分和成人缝的存在而发生变化。因此,本研究分析了成人缝和不同骨成分对 EEG-FP 和逆问题(IP)解决方案的影响。

利用成熟的头部图谱,生成了详细的头部模型,包括致密骨和海绵骨以及成人缝。颅骨的真实电导率被认为是根据海绵骨比例和缝的存在而不均匀的。解决了 EEG-FP 和 EEG-IP,并将结果与使用均匀颅骨模型、不同电导率和忽略缝以及使用假设的老化颅骨电导率模型的结果进行了比较。

研究结果表明,模型中存在局部化的 FP 误差,相对误差高达 85%,特别是在缝线上,且与海绵骨比例直接相关。这在不同的年龄阶段都很明显。也发现了类似的 EEG-IP 不准确性,最大误差(最大 4.14 厘米)横跨缝线上。

因此,结论是颅骨建模为一个不均匀的层,根据海绵骨比例和不同的缝电导率而变化,对于准确的 EEG-FP 和源定位计算是必不可少的。忽略它们会导致显著的误差,这对于 EEG 研究和临床诊断都很重要。

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