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脑电图/事件相关电位研究中使用头皮表面拉普拉斯算子的问题与考量:教程综述

Issues and considerations for using the scalp surface Laplacian in EEG/ERP research: A tutorial review.

作者信息

Kayser Jürgen, Tenke Craig E

机构信息

Division of Cognitive Neuroscience, New York State Psychiatric Institute, New York, NY, USA; Department of Psychiatry, Columbia University College of Physicians & Surgeons, New York, NY, USA.

Division of Cognitive Neuroscience, New York State Psychiatric Institute, New York, NY, USA; Department of Psychiatry, Columbia University College of Physicians & Surgeons, New York, NY, USA.

出版信息

Int J Psychophysiol. 2015 Sep;97(3):189-209. doi: 10.1016/j.ijpsycho.2015.04.012. Epub 2015 Apr 25.

Abstract

Despite the recognition that the surface Laplacian may counteract adverse effects of volume conduction and recording reference for surface potential data, electrophysiology as a discipline has been reluctant to embrace this approach for data analysis. The reasons for such hesitation are manifold but often involve unfamiliarity with the nature of the underlying transformation, as well as intimidation by a perceived mathematical complexity, and concerns of signal loss, dense electrode array requirements, or susceptibility to noise. We revisit the pitfalls arising from volume conduction and the mandated arbitrary choice of EEG reference, describe the basic principle of the surface Laplacian transform in an intuitive fashion, and exemplify the differences between common reference schemes (nose, linked mastoids, average) and the surface Laplacian for frequently-measured EEG spectra (theta, alpha) and standard event-related potential (ERP) components, such as N1 or P3. We specifically review common reservations against the universal use of the surface Laplacian, which can be effectively addressed by employing spherical spline interpolations with an appropriate selection of the spline flexibility parameter and regularization constant. We argue from a pragmatic perspective that not only are these reservations unfounded but that the continued predominant use of surface potentials poses a considerable impediment on the progress of EEG and ERP research.

摘要

尽管人们认识到表面拉普拉斯算子可能会抵消容积传导和表面电位数据记录参考的不利影响,但作为一门学科,电生理学一直不愿意采用这种方法进行数据分析。这种犹豫的原因是多方面的,但通常包括对潜在变换性质的不熟悉,以及对感知到的数学复杂性的恐惧,还有对信号丢失、密集电极阵列要求或噪声敏感性的担忧。我们重新审视由容积传导和脑电图参考的强制任意选择所产生的陷阱,以直观的方式描述表面拉普拉斯变换的基本原理,并举例说明常见参考方案(鼻尖、双侧乳突、平均)与表面拉普拉斯算子在频繁测量的脑电图频谱(θ波、α波)和标准事件相关电位(ERP)成分(如N1或P3)方面的差异。我们特别回顾了针对表面拉普拉斯算子普遍使用的常见保留意见,通过采用球形样条插值并适当选择样条灵活性参数和正则化常数,可以有效地解决这些问题。我们从务实的角度认为,这些保留意见不仅毫无根据,而且表面电位的持续主导使用对脑电图和ERP研究的进展构成了相当大的障碍。

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