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Two level continuous speech recognition using demisyllable-based HMM word spotting

Abstract

This paper describes a two level Spanish Continuous Speech Recognition System based on Demisyllable HMM modelling, word-spotting and finite-state lexical and syntactic knowledge. The first level, the word level, is based on a spotting algorithm which takes as input the unknown utterance, the HMM of the reference demisyllable and the lexical knowledge in terms of a finite-state network. The output of the word level is a lattice of word hypothesis [1]. The second level, the phrase level, searches in a time-synchronous procedure the best sentence that end at each time instant. It takes as input the word lattice and the syntactic knowledge in terms of a finite-state network, giving as output the best legal sentence. The proposal two-level system was tested recognizing the integers from 0 to 1000 in a speaker independent approach. We get a word accuracy of 93,2% with a sentence accuracy of 84. 5%. Keywords: Speech Recognition, Hidden Markov Model, Fuzzy Training, Demisyllable, Word-spotting, Multiple Hypothesis, Finite State Networks.

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Two level continuous speech recognition using demisyllable-based HMM word spotting

Author: Lleida Solano, Eduardo,Mariño Acebal, José Bernardo,Nadeu Camprubí, Climent,Oliveras Vergés, Albert
Year: 1991
Source: https://upcommons.upc.edu/bitstream/2117/111585/1/e91_1199.pdf
2nd Eu opean Con e ence on
Speech Communica ion and Technology
EUROSPEECH '91
Geno a, I aly, Sep embe 24Ć26, 1991
ISCA A chi e
h p://www.iscaĆspeech.o g/a chi e
EUROSPEECH '91, Geno a, I aly, Sep embe 1991 1199
EUROSPEECH '91, Geno a, I aly, Sep embe 1991 1200
EUROSPEECH '91, Geno a, I aly, Sep embe 1991 1201
EUROSPEECH '91, Geno a, I aly, Sep embe 1991 1202