- Purpose of the paper:
- Non-stationarities are ubiquitous in EEG signals.
- (a) in the differences between the initial calibration measurement and the online operation of a BCI,
- (b) caused by changes in the subject’s brain processes during an experiment (e.g. due to fatigue, change of task involvement, etc)
- we quantify for the first time such systematic evidence of statistical differences in data recorded during offline and online sessions.
- we propose novel techniques of investigating and visualizing data distributions, which are particularly useful for the analysis of (non-)stationarities
- Our study shows that the brain signals used for control can change substantially from the offline calibration sessions to online control, and also within a single session.
- we propose several adaptive classification schemes and study their performance on
data recorded during online experiments. - Classification methods
- ORIG: this is the unmodified classifier trained on data from the offline scenario and serves as a baseline.
- REBIAS:we use the continuous output of the unmodified classifier and shift the output by an amount that would minimize the error on the labeled feedback data.
- RETRAIN:we use the features as chosen from the offline scenario, but retrain the LDA classifier to choose the hyper plane that minimizes the error on labeled feedback data.
- RECSP:we completely ignore the offline training data and perform CSP feature selection and classification training solely on the feedback data.
- Types and controls
- (1) all the labeled online data up to the current point (cumulative),
- (2) only a window over the immediate past (moving), or
- (3) only an initial window of data from each session(initial).
- We thus have C-REBIAS7, C-RETRAIN and C-RECSP, W-REBIAS, W-RETRAIN and W-RECSP, and I-REBIAS, I-RETRAIN and I-RECSP, respectively, for the three cases considered.
Sunday, February 17, 2008
Paper: Towards adaptive classification for BCI
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1 comment:
Provide a link to the paper. If a link is not available then provide full citation so it can be found.
Very interesting work.
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