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Independent Component Analysis and Discrete Wavelet Transform for Artifact Removal in Biomedical Signal Processing

Academic Article
Publication Date:
2014
Short description:
Independent Component Analysis and Discrete Wavelet Transform for Artifact Removal in Biomedical Signal Processing / Calcagno, S., LA FORESTA, F., Versaci, M.. - In: AMERICAN JOURNAL OF APPLIED SCIENCES. - ISSN 1546-9239. - 11 (1):1(2014), pp. 57-68. [10.3844/ajassp.2014.57.68]
abstract:
Recent works have shown that artifact removal in biomedical signals can be performed by using Discrete Wavelet Transform (DWT) or Independent Component Analysis (ICA). It results often very difficult to remove some artifacts because they could be superimposed on the recordings and they could corrupt the signals in the frequency domain. The two conditions could compromise the performance of both DWT and ICA methods. In this study we show that if the two methods are jointly implemented, it is possible to improve the performances for the artifact rejection procedure. We discuss in detail the new method and we also show how this method provides advantages with respect to DWT of ICA procedure. Finally, we tested the new approach on real data.
Iris type:
1.1 Articolo in rivista
List of contributors:
Calcagno, Salvatore; LA FORESTA, Fabio; Versaci, Mario
Authors of the University:
CALCAGNO SALVATORE
LA FORESTA Fabio
VERSACI Mario
Handle:
https://iris.unirc.it/handle/20.500.12318/1379
Published in:
AMERICAN JOURNAL OF APPLIED SCIENCES
Journal
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