Badan Riset dan Inovasi Nasional
07-11-2022
13-08-2024
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Analysis of EEG activity usually raises the problem of differentiating between g...
In recording the EEG signals are often contamination signal called artifacts. Th...
Artifacts or noise sources increase the difficulty in analyzing the EEG and to o...
By extracting specific brain activity from recorded EEG signals and linking it t...
Eye blinking known as ocular artifact cause changes to the electric fields over ...
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Automatic Artifacts Removal of EEG Signals using Robust Principal Component Analysis
Analysis of EEG activity usually raises the problem of differentiating between genuine EEG activity and that which is introduced through a variety of external influence. These artifacts may affect the outcome of the EEG recording. In this paper, wavelet denoising and band pass filter for preprocessing and a robust principal component analysis algorithm for extraction are proposed to remove the artifacts. The algorithm is designed to adaptively derive a relatively small number of decorrelated linear combinations of a set of random zero-mean variables while retaining as much of the information from the original variables as possible. The proposed method was tested in real EEG records acquired from eight subjects. The experimental result show that the proposed method can effectively remove the artifacts from all subjects. International Conferences on Technology, Informatics, Management, Engineering & Environtment, 19-21 August 2014, Bandung Indonesia.