DocumentCode :
282552
Title :
Speaker-independent vowel recognition: comparison of backpropagation and trained classification trees
Author :
Cole, R.A. ; Muthusamy, Y.K. ; Atlas, L. ; Leen, T. ; Rudnick, M.
Author_Institution :
Dept. of Comput. Sci. & Eng., Oregon Graduate Center, Beaverton, OR, USA
Volume :
i
fYear :
1990
fDate :
2-5 Jan 1990
Firstpage :
132
Abstract :
Experiments comparing the performance of trained classification trees to that of multilayer feedforward networks on speaker-independent vowel recognition, using information in a single spectra slice, are presented. The vowel stimuli were exemplars of 12 monophthongal vowels of American English taken from all phonetic contexts in spoken utterances. The training set consisted of 342 vowel tokens provided by 320 speakers, and the test set consisted of 137 tokens provided by a different 100 speakers. The classification trees and neural classifiers were trained and tested on identical data. In addition, experiments were performed to determine the most effective way to present vowel information for classification. The results show that neural nets trained with backpropagation produce better results than classification trees in all comparable experimental conditions
Keywords :
neural nets; speech recognition; American English; backpropagation; monophthongal vowels; multilayer feedforward networks; neural classifiers; neural nets; performance comparison; phonetic contexts; single spectra slice; speaker-independent vowel recognition; spoken utterances; test set; trained classification trees; training set; vowel stimuli; vowel tokens; Backpropagation; Classification tree analysis; Computed tomography; Computer science; Input variables; Loudspeakers; Neural networks; Principal component analysis; Speech recognition; Training data;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
System Sciences, 1990., Proceedings of the Twenty-Third Annual Hawaii International Conference on
Conference_Location :
Kailua-Kona, HI
Type :
conf
DOI :
10.1109/HICSS.1990.205109
Filename :
205109
Link To Document :
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