頁籤選單縮合
| 題 名 | Recovering EEG Signals: Muscle Artifact Suppression Using Wavelet-Enhanced, Independent Component Analysis Integrated with Adaptive Filter |
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| 作 者 | Chiu, Chuang-chien; Hai, Bui Huy; Yeh, Shoou-jeng; Liao, Ken Ying-kai; | 書刊名 | Biomedical Engineering: Applications, Basis and Communications |
| 卷 期 | 26:5 2014.10[民103.10] |
| 頁 次 | 頁(1450063)1-11 |
| 分類號 | 410.1644 |
| 關鍵詞 | Artifact removal; Adaptive filters; Wavelet transform; Wavelet-enhanced ICA; Electroencephalogram; |
| 語 文 | 英文(English) |
| 英文摘要 | Independent component analysis (ICA) has been proven to be a powerful tool for removing artifacts from electroencephalogram (EEG) recordings in the form of blind source separation (BSS). Independent components (ICs) come from undesired sources that are mixed with the useful signal, and the assessment of such ICs allows them to be detected. But the unwanted ICs also can contain some useful information. To overcome this problem, wavelet-enhanced ICA (wICA) can be used, and this method applies a wavelet threshold for each wavelet coefficient to suppress abnormal deformation in each wavelet coefficient. Using the wICA algorithm to suppress artifacts provides an EEG signal with less distortion in the amplitude and in the phase of the cerebral part of the EEG, and the cerebral part of the EEG can be estimated and obtained very similar to control conditions. However, the EEG signals are affected by various artifact components, and those that have the greatest influence are electromyography (EMG) and electrooculography (EOG). These artifacts may appear simultaneously, randomly or interruptedly, so a fixed threshold level is not really appropriate. We proposed a system including wICA integrated with an adaptive filter model, and this combination system can provide the best prediction of the impacts of artifacts to set up a threshold value that is adaptive and suitable. Our experimental results showed that are approach provided better rejection of artifacts than the wICA system. |
本系統中英文摘要資訊取自各篇刊載內容。