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A channel differential EZW coding scheme for EEG data compression
Authors:Dehkordi Vahid R  Daou Hoda  Labeau Fabrice
Affiliation:Department of Electrical and Computer Engineering, McGill University, Montréal, QC, Canada. vahid@cim.mcgill.ca
Abstract:In this paper, a method is proposed to compress multichannel electroencephalographic (EEG) signals in a scalable fashion. Correlation between EEG channels is exploited through clustering using a k-means method. Representative channels for each of the clusters are encoded individually while other channels are encoded differentially, i.e., with respect to their respective cluster representatives. The compression is performed using the embedded zero-tree wavelet encoding adapted to 1-D signals. Simulations show that the scalable features of the scheme lead to a flexible quality/rate tradeoff, without requiring detailed EEG signal modeling.
Keywords:
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