首页> 外文期刊>Journal of Neuroscience Methods >Improved ballistocardiac artifact removal from the electroencephalogram recorded in fMRI.
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Improved ballistocardiac artifact removal from the electroencephalogram recorded in fMRI.

机译:改进的从功能磁共振成像中记录的脑电图中消除心搏过速伪影。

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摘要

The simultaneous recording of electroencephalogram (EEG) and functional magnetic resonance image (fMRI) is a promising tool that is capable of providing high spatiotemporal brain mapping, with each modality supplying complementary information. One of the major barriers to obtain high-quality simultaneous EEG/fMRI data is that pulsatile activity due to the heartbeat induces significant artifacts in the EEG. The purpose of this study was to develop a novel algorithm for removing heartbeat artifact, thus overcoming problems associated with previous methods. Our method consists of a mean artifact wave form subtraction, the selective removal of wavelet coefficients, and a recursive least-square adaptive filtering. The recursive least-square adaptive filtering operates without dedicated sensor for the reference signal, and only when the mean subtraction and wavelet-based noise removal is not satisfactory. The performance of our system has been assessed using simulated data based on experimental data of various spectral characteristics, and actual experimental data of alpha-wave-dominant normal EEG and epileptic EEG.
机译:脑电图(EEG)和功能磁共振图像(fMRI)的同时记录是一种有前途的工具,该工具能够提供高时空脑图,并且每种方式都可以提供补充信息。获得高质量同时EEG / fMRI数据的主要障碍之一是由于心跳引起的搏动活动会在EEG中引起明显的伪影。这项研究的目的是开发一种消除心跳伪影的新颖算法,从而克服与先前方法相关的问题。我们的方法包括平均伪影波形减法,选择性去除小波系数和递归最小二乘自适应滤波。递归最小二乘自适应滤波在没有专用于参考信号的传感器的情况下进行,并且仅在均值相减和基于小波的噪声去除不令人满意时才进行。我们的系统性能已根据各种光谱特性的实验数据以及以α波为主的正常EEG和癫痫性EEG的实际实验数据,基于模拟数据进行了评估。

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