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Artifact removal from EEG signals using adaptive filters in cascade

Journal of Physics Conference Series · 2007 · Vol. 90 · pp. 012081–012081
Agustina Garcés CorreaEric LaciarH. Daniel PatiñoMax E. Valentinuzzi

Abstract

Artifacts in EEG (electroencephalogram) records are caused by various factors, like line interference, EOG (electro-oculogram) and ECG (electrocardiogram). These noise sources increase the difficulty in analyzing the EEG and to obtaining clinical information. For this reason, it is necessary to design specific filters to decrease such artifacts in EEG records. In this paper, a cascade of three adaptive filters based on a least mean squares (LMS) algorithm is proposed. The first one eliminates line interference, the second adaptive filter removes the ECG artifacts and the last one cancels EOG spikes. Each stage uses a finite impulse response (FIR) filter, which adjusts its coefficients to produce an output similar to the artifacts present in the EEG. The proposed cascade adaptive filter was tested in five real EEG records acquired in polysomnographic studies. In all cases, line-frequency, ECG and EOG artifacts were attenuated. It is concluded that the proposed filter reduces the common artifacts present in EEG signals without removing significant information embedded in these records.

EEG and Brain-Computer InterfacesBlind Source Separation TechniquesNeural dynamics and brain functionElectroencephalographyComputer scienceArtifact (error)Finite impulse responseAdaptive filterArtificial intelligenceFilter (signal processing)CascadePattern recognition (psychology)Speech recognition

Funding

  • Consejo Nacional de Investigaciones Científicas y Técnicas
  • Universidad Nacional de San Juan
Citations
185
FWCI
0.98
field-weighted impact
References
11
Percentile
75%
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References
PhysioBank, PhysioToolkit, and PhysioNet
Circulation · 2000 · 14,211 citations
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