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头皮上使用磁偶极子线圈的 MEG 传感器定位:一种高精度配准的方法。

On-scalp MEG sensor localization using magnetic dipole-like coils: A method for highly accurate co-registration.

机构信息

Department of Microtechnology and Nanoscience - MC2, Chalmers University of Technology, Gothenburg, Sweden.

Department of Microtechnology and Nanoscience - MC2, Chalmers University of Technology, Gothenburg, Sweden.

出版信息

Neuroimage. 2020 May 15;212:116686. doi: 10.1016/j.neuroimage.2020.116686. Epub 2020 Feb 28.

Abstract

Source modelling in magnetoencephalography (MEG) requires precise co-registration of the sensor array and the anatomical structure of the measured individual's head. In conventional MEG, the positions and orientations of the sensors relative to each other are fixed and known beforehand, requiring only localization of the head relative to the sensor array. Since the sensors in on-scalp MEG are positioned on the scalp, locations of the individual sensors depend on the subject's head shape and size. The positions and orientations of on-scalp sensors must therefore be measured at every recording. This can be achieved by inverting conventional head localization, localizing the sensors relative to the head - rather than the other way around. In this study we present a practical method for localizing sensors using magnetic dipole-like coils attached to the subject's head. We implement and evaluate the method in a set of on-scalp MEG recordings using a 7-channel on-scalp MEG system based on high critical temperature superconducting quantum interference devices (high-T SQUIDs). The method allows individually localizing the sensor positions, orientations, and responsivities with high accuracy using only a short averaging time (≤ 2 ​mm, < 3° and < 3%, respectively, with 1-s averaging), enabling continuous sensor localization. Calibrating and jointly localizing the sensor array can further improve the accuracy of position and orientation (< 1 ​mm and < 1°, respectively, with 1-s coil recordings). We demonstrate source localization of on-scalp recorded somatosensory evoked activity based on co-registration with our method. Equivalent current dipole fits of the evoked responses corresponded well (within 4.2 ​mm) with those based on a commercial, whole-head MEG system.

摘要

脑磁图(MEG)中的源建模需要精确地将传感器阵列与被测个体头部的解剖结构配准。在传统的 MEG 中,传感器之间的位置和方向是固定的,并且事先已知,只需要将头部相对于传感器阵列进行定位。由于头皮上的 MEG 传感器位于头皮上,因此单个传感器的位置取决于受试者的头形和头围。因此,必须在每次记录时测量头皮上传感器的位置和方向。这可以通过反转传统的头部定位来实现,即将传感器相对于头部进行定位,而不是相反。在这项研究中,我们提出了一种使用附接到受试者头部的类似于磁偶极子的线圈来定位传感器的实用方法。我们在使用基于高温超导量子干涉器件(high-T SQUIDs)的 7 通道头皮 MEG 系统进行的一组头皮 MEG 记录中实现并评估了该方法。该方法允许仅使用短的平均时间(分别为≤2 毫米、<3°和<3%,平均时间为 1 秒)即可高精度地单独定位传感器位置、方向和响应率,从而实现连续的传感器定位。校准和联合定位传感器阵列可以进一步提高位置和方向的准确性(分别为<1 毫米和<1°,平均时间为 1 秒线圈记录)。我们基于与我们的方法的配准来演示头皮记录的体感诱发电活动的源定位。诱发响应的等效电流偶极子拟合与基于商业的全头 MEG 系统的拟合非常吻合(在 4.2 毫米内)。

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