A review of time-frequency matched filter design with application to seizure detection in multichannel newborn EEG
Author | Boashash B. |
Author | Azemi G. |
Available date | 2022-05-31T19:01:36Z |
Publication Date | 2014 |
Publication Name | Digital Signal Processing: A Review Journal |
Resource | Scopus |
Identifier | http://dx.doi.org/10.1016/j.dsp.2014.02.007 |
Abstract | This paper presents a novel design of a time-frequency (t-f) matched filter as a solution to the problem of detecting a non-stationary signal in the presence of additive noise, for application to the detection of newborn seizure using multichannel EEG signals. The solution reduces to two possible t-f approaches that use a general formulation of t-f matched filters (TFMFs) based on the Wigner-Ville and cross Wigner-Ville distributions, and a third new approach based on the signal ambiguity domain representation; referred to as Radon-ambiguity detector. This contribution defines a general design formulation and then implements it for newborn seizure detection using multichannel EEG signals. Finally, the performance of different TFMFs is evaluated for different t-f kernels in terms of classification accuracy using real newborn EEG signals. Experimental results show that the detection method which uses TFMFs based on the cross Wigner-Ville distribution outperforms other approaches including the existing TFMF-based ones. The results also show that TFMFs which use high-resolution kernels such as the modified B-distribution, achieve higher detection accuracies compared to the ones which use other reduced-interference t-f kernels. |
Language | en |
Publisher | Elsevier Inc. |
Subject | Additive noise Bandpass filters Matched filters Signal detection Signal receivers Wigner-Ville distribution Classification accuracy Detection accuracy Detection methods Domain representations Multichannel EEG Nonstationary signals Seizure detection Time frequency analysis Biomedical signal processing |
Type | Article |
Pagination | 28-38 |
Issue Number | 1 |
Volume Number | 28 |
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Electrical Engineering [2649 items ]