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使用 3D 扫描进行 EEG 电极的空间定位。

Spatial localization of EEG electrodes using 3D scanning.

机构信息

Research Center for Motor Control and Neuroplasticity, KU Leuven, Leuven, Belgium.

出版信息

J Neural Eng. 2019 Apr;16(2):026020. doi: 10.1088/1741-2552/aafdd1. Epub 2019 Jan 11.

Abstract

OBJECTIVE

A reliable reconstruction of neural activity using high-density electroencephalography (EEG) requires an accurate spatial localization of EEG electrodes aligned to the structural magnetic resonance (MR) image of an individual's head. Current technologies for electrode positioning, such as electromagnetic digitization, are yet characterized by non-negligible localization and co-registration errors. In this study, we propose an automated method for spatial localization of EEG electrodes using 3D scanning, a non-invasive and easy-to-use technology with potential applications in clinical settings.

APPROACH

Our method consists of three main steps: (1) the 3D scan is ambient light-corrected and spatially aligned to the head surface extracted from the anatomical MR image; (2) electrode positions are identified by segmenting the 3D scan based on predefined colour and topological properties; (3) electrode labelling is performed by aligning an EEG montage template to the electrode positions. The performance of the method was assessed on data collected in eight participants wearing high-density EEG caps with 128 sensors, from three different manufacturers. We estimated the co-registration error using the distance between the MR-based head shape and the closest 3D scan points. Also, we quantified the positioning error using the distance between the detected electrode positions and the corresponding locations manually selected on the 3D scan data.

MAIN RESULTS

For all participants and EEG caps, we obtained a median error of co-registration below 3.0 mm and of spatial localization below 1.4 mm. The method based on 3D scanning data was significantly more precise compared to the electromagnetic digitization technique, and the total time required for obtaining electrode positions was reduced by about half.

SIGNIFICANCE

We have introduced a method to automatically detect EEG electrodes based on 3D scanning information. We believe that our work can contribute to a more effective, reliable and widespread use of high-density EEG as brain imaging tool.

摘要

目的

使用高密度脑电图(EEG)进行可靠的神经活动重建,需要将 EEG 电极准确地定位到个体头部的结构磁共振(MR)图像上。当前的电极定位技术,如电磁数字化技术,仍存在不可忽略的定位和配准误差。在这项研究中,我们提出了一种使用 3D 扫描自动定位 EEG 电极的方法,该方法具有非侵入性和易于使用的特点,在临床环境中有潜在的应用。

方法

我们的方法包括三个主要步骤:(1)3D 扫描经过环境光校正,并与从解剖 MR 图像中提取的头部表面进行空间配准;(2)通过基于预设颜色和拓扑属性的 3D 扫描分割,识别电极位置;(3)通过将 EEG 导联模板与电极位置对齐,进行电极标记。该方法的性能在 8 名佩戴来自 3 个不同制造商的 128 个传感器的高密度 EEG 帽的参与者的数据上进行了评估。我们使用基于 MR 的头部形状与最近的 3D 扫描点之间的距离来估计配准误差。此外,我们通过检测到的电极位置与手动选择的 3D 扫描数据上的对应位置之间的距离来量化定位误差。

主要结果

对于所有参与者和 EEG 帽,我们获得的配准误差中位数低于 3.0mm,空间定位误差中位数低于 1.4mm。基于 3D 扫描数据的方法比电磁数字化技术显著更精确,并且获得电极位置的总时间减少了约一半。

意义

我们提出了一种基于 3D 扫描信息自动检测 EEG 电极的方法。我们相信,我们的工作可以促进高密度 EEG 作为脑成像工具的更有效、可靠和广泛应用。

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