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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Quantitative evaluation of artifact removal in real magnetoencephalogram signals with blind source separation.
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Quantitative evaluation of artifact removal in real magnetoencephalogram signals with blind source separation.

机译:定量评估带有盲源分离的真实脑电图信号中的伪影。

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The magnetoencephalogram (MEG) is contaminated with undesired signals, which are called artifacts. Some of the most important ones are the cardiac and the ocular artifacts (CA and OA, respectively), and the power line noise (PLN). Blind source separation (BSS) has been used to reduce the influence of the artifacts in the data. There is a plethora of BSS-based artifact removal approaches, but few comparative analyses. In this study, MEG background activity from 26 subjects was processed with five widespread BSS (AMUSE, SOBI, JADE, extended Infomax, and FastICA) and one constrained BSS (cBSS) techniques. Then, the ability of several combinations of BSS algorithm, epoch length, and artifact detection metric to automatically reduce the CA, OA, and PLN were quantified with objective criteria. The results pinpointed to cBSS as a very suitable approach to remove the CA. Additionally, a combination of AMUSE or SOBI and artifact detection metrics based on entropy or power criteria decreased the OA. Finally, the PLN was reduced by means of a spectral metric. These findings confirm the utility of BSS to help in the artifact removal for MEG background activity.
机译:脑磁图(MEG)被不需要的信号污染,这些信号被称为伪影。其中一些最重要的是心脏和眼部伪影(分别是CA和OA)以及电源线噪声(PLN)。盲源分离(BSS)已用于减少数据中伪像的影响。有很多基于BSS的伪影去除方法,但是很少有比较分析。在这项研究中,使用5种广泛的BSS(AMUSE,SOBI,JADE,扩展的Infomax和FastICA)和一种受约束的BSS(cBSS)技术处理了来自26名受试者的MEG背景活动。然后,以客观标准对BSS算法,历元长度和伪影检测指标的几种组合自动减少CA,OA和PLN的能力进行了量化。结果明确指出,cBSS是删除CA的非常合适的方法。此外,基于熵或功率标准的AMUSE或SOBI和伪影检测指标的组合降低了OA。最终,通过光谱度量降低了PLN。这些发现证实了BSS在帮助去除MEG背景活动的伪影方面的实用性。

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