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ECG personal identification in subspaces using radial basis neural networks

Authors :
Yuliyan Velchev
Ognian Boumbarov
Strahil Sokolov
Source :
2009 IEEE International Workshop on Intelligent Data Acquisition and Advanced Computing Systems: Technology and Applications.
Publication Year :
2009
Publisher :
IEEE, 2009.

Abstract

In this paper an approach for personal biometric identification is presented based on extraction of ECG features and classification with RBFNN. We perform denoising and segmentation on the input signal, after which we realize dimensionality reduction and feature extraction based on PCA transform. The separability of the selected features is improved by applying LDA. The final stage of the proposed approach is classification and recognition of the extracted features with classifier score fusion.

Details

Database :
OpenAIRE
Journal :
2009 IEEE International Workshop on Intelligent Data Acquisition and Advanced Computing Systems: Technology and Applications
Accession number :
edsair.doi...........5bae61632474a5780552cc17029cd1b0