Estimation of Visual Evoked Potentials using a Signal Subspace Approach
Extraction of visual evoked potentials (VEPs) from the human brain is generally very difficult due to its poor signal-to-noise ratio (SNR) property. A signal subspace technique is presented to estimate VEPs hidden inside highly colored electroencephalogram EEG) noise. This method is borrowed and m...
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my.utp.eprints.38902011-01-10T10:11:18Z Estimation of Visual Evoked Potentials using a Signal Subspace Approach Yusoff, Mohd Zuki Kamel , Nidal Ahmad Fadzil, Mohd Hani TK Electrical engineering. Electronics Nuclear engineering Extraction of visual evoked potentials (VEPs) from the human brain is generally very difficult due to its poor signal-to-noise ratio (SNR) property. A signal subspace technique is presented to estimate VEPs hidden inside highly colored electroencephalogram EEG) noise. This method is borrowed and modified from signal subspace techniques originally used for enhancing speech corrupted by colored noise. The signal subspace is estimated by applying eigenvalue decomposition on the approximated signal covariance matrix. The signal subspace based algorithm is able to satisfactorily extract the P100, P200 and P300 peak latencies from artificially generated noisy VEPs. The simulation results show that the estimator maintains an average success rate of 87 % with an average percentage error of less than 9 %, when subjected to SNR from 0 dB to -10 dB. 2007 Conference or Workshop Item PeerReviewed http://ieeexplore.ieee.org/search/srchabstract.jsp?tp=&arnumber=4658566&queryText%3DEstimation+of+Visual+Evoked+Potentials+using+a+Signal+Subspace+Approach%26openedRefinements%3D*%26searchField%3DSearch+All Yusoff, Mohd Zuki and Kamel , Nidal and Ahmad Fadzil, Mohd Hani (2007) Estimation of Visual Evoked Potentials using a Signal Subspace Approach. In: International Conference on Intelligent and Advanced Systems 2007 (ICIAS 2007), November 25-28, 2007, Kuala Lumpur Convention Centre, Kuala Lumpur, Malaysia. http://eprints.utp.edu.my/3890/ |
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TK Electrical engineering. Electronics Nuclear engineering Yusoff, Mohd Zuki Kamel , Nidal Ahmad Fadzil, Mohd Hani Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
description |
Extraction of visual evoked potentials (VEPs) from the human
brain is generally very difficult due to its poor signal-to-noise ratio (SNR) property. A signal subspace technique is presented to estimate VEPs hidden inside highly colored electroencephalogram EEG) noise. This method is borrowed and
modified from signal subspace techniques originally used for
enhancing speech corrupted by colored noise. The signal
subspace is estimated by applying eigenvalue decomposition on the approximated signal covariance matrix. The signal subspace based algorithm is able to satisfactorily extract the P100, P200 and P300 peak latencies from artificially generated noisy VEPs. The simulation results show that the estimator maintains an average success rate of 87 % with an average percentage error of less than 9 %, when subjected to SNR from 0 dB to -10 dB. |
format |
Conference or Workshop Item |
author |
Yusoff, Mohd Zuki Kamel , Nidal Ahmad Fadzil, Mohd Hani |
author_facet |
Yusoff, Mohd Zuki Kamel , Nidal Ahmad Fadzil, Mohd Hani |
author_sort |
Yusoff, Mohd Zuki |
title |
Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
title_short |
Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
title_full |
Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
title_fullStr |
Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
title_full_unstemmed |
Estimation of Visual Evoked Potentials using a Signal Subspace Approach |
title_sort |
estimation of visual evoked potentials using a signal subspace approach |
publishDate |
2007 |
url |
http://ieeexplore.ieee.org/search/srchabstract.jsp?tp=&arnumber=4658566&queryText%3DEstimation+of+Visual+Evoked+Potentials+using+a+Signal+Subspace+Approach%26openedRefinements%3D*%26searchField%3DSearch+All http://eprints.utp.edu.my/3890/ |
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1738655303607517184 |