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Rejection of artifact sources in magnetoencephalogram background activity using independent component analysis

机译:使用独立分量分析拒绝人脑磁图背景活动中的伪影源

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摘要

The aim of this pilot study was to assess the usefulness of independent component analysis (ICA) to detect cardiac artifacts and power line interferences in magnetoencephalogram (MEG) recordings. We recorded MEG signals from six subjects with, a 148-channel whole-head magnetometer (MAGNES 2500 WH, 4D Neuroimaging). Epochs of 50 s with power line noise, cardiac, and ocular artifacts were selected for analysis. We applied a statistical criterion to determine the number of sources, and a robust ICA algorithm to decompose the MEG epochs. Skewness, kurtosis, and a spectral metric were used to mark the studied artifacts. We found that the power fine interference could be easily detected by its frequency characteristics. Moreover, skewness outperformed kurtosis when identifying the cardiac artifact.
机译:这项初步研究的目的是评估独立成分分析(ICA)在检测脑磁图和磁力线(MEG)记录中的电源线干扰方面的实用性。我们使用148通道全头磁力计(MAGNES 2500 WH,4D Neuroimaging)记录了来自六个受试者的MEG信号。选择50 s的时间段,包括电源线噪声,心脏和眼部伪影进行分析。我们应用了统计标准来确定源的数量,并应用了鲁棒的ICA算法来分解MEG历元。偏度,峰度和光谱度量用于标记研究的伪像。我们发现,可以通过其频率特性轻松检测出电源精细干扰。此外,在识别心脏伪影时,偏度优于峰度。

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