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BCG Artifact Removal for Reconstructing Full-Scalp EEG Inside the MR Scanner

机译:去除BCG伪像以重建MR扫描仪内部的全头皮脑电图

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In simultaneous EEG/fMRI acquisition, the ballistocardiogram (BCG) artifact presents a major challenge for meaningful EEG signal interpretation and needs to be removed. This is very difficult, especially in continuous studies where BCG cannot be removed with averaging. In this study, we take advantage of a high-density EEG-cap and propose an integrated learning and inference approach to estimate the BCG contribution to the overall noisy recording. In particular, we present a special-designed experiment to enable a near-optimal subset selection scheme to identify a small set (20 out of 256 channels), and argue that in real-recording, BCG artifact signal from all channels can be estimated from this set. We call this new approach ``Direct Recording Temporal Spatial Encoding'' (DRTSE) to reflect these properties. In a preliminary evaluation, the DRTSE is combined with a direct subtraction and an optimization scheme to reconstruct the EEG signal. The performance was compared against the benchmark Optimal Basis Set (OBS) method. In the challenging non-event-related EEG studies, the DRTSE method, with the optimization-based approach, yields an EEG reconstruction that reduces the normalized RMSE by approximately 13 folds, compared to OBS.
机译:在同时进行EEG / fMRI采集中,心电图(BCG)伪影对有意义的EEG信号解释提出了重大挑战,需要将其删除。这是非常困难的,尤其是在连续研究中,BCG不能平均去除。在这项研究中,我们利用了高密度脑电图上限,并提出了一种综合的学习和推理方法来估算BCG对整个嘈杂录音的贡献。特别是,我们提出了一项经过特殊设计的实验,以使接近最优的子集选择方案能够识别一小套(256个通道中的20个),并认为在实际记录中,可以从所有通道估计BCG伪像信号。这套。我们将这种新方法称为``直接记录时空编码''(DRTSE)以反映这些属性。在初步评估中,将DRTSE与直接减法和优化方案相结合以重建EEG信号。将性能与基准最佳基准集(OBS)方法进行了比较。在具有挑战性的非事件相关的脑电图研究中,与OBS相比,DRTSE方法与基于优化的方法可产生脑电图重构,将标准化的RMSE降低约13倍。

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