DocumentCode :
1869801
Title :
Feature Extraction in Auditory Brainstem Responses using Wavelet Decomposition on a Moving Window of Waveform Data
Author :
Lightbody, G. ; McCullagh, P.J. ; McAllister, H.G.
Author_Institution :
Sch. of Comput. & Math., Ulster Univ., Newtownabbey
fYear :
2006
fDate :
28-30 June 2006
Firstpage :
321
Lastpage :
326
Abstract :
The auditory brainstem response is a waveform present in a subject´s EEG in response to a heard stimulus. The waveforms are hidden deep within the EEG and a significant body of work has been devoted to the enhancement and automated classification of these responses. This paper investigates the use of features extracted from the wavelet domain to assist in the classification of the ABR waveform. Initially, strong responses were classified without error by combining power features from the time and wavelet domain and applying a negative weighting to test cases where the presence of an artefact was suspected. The remaining ABR waveforms were passed to a second stage of classification. Cross-correlation features were extracted from repeat recordings using wavelet decomposition performed on a moving window of data within the post stimulus waveform. By separating different frequency levels within the decomposition a more representative post stimulus section of the waveform was analysed. When compared with expert opinion, the lower level responses with repeat recordings were classified to an accuracy of 76.4%
Keywords :
auditory evoked potentials; correlation methods; electroencephalography; feature extraction; medical signal processing; signal classification; time-domain analysis; waveform analysis; EEG; auditory brainstem responses; automated classification; cross-correlation features; feature extraction; post stimulus waveform analysis; signal artefact; signal enhancement; time domain; wavelet decomposition; Auditory Brainstem Response; Wavelet decomposition; feature extraction;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Irish Signals and Systems Conference, 2006. IET
Conference_Location :
Dublin
Print_ISBN :
0-86341-665-9
Type :
conf
Filename :
4123918
Link To Document :
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