Improved lexicon modeling for continuous speech recognition

نویسندگان

  • Seong-Jin Yun
  • Yung-Hwan Oh
  • Gyung-Chul Shin
چکیده

We propose the stochastic lexicon model which represents the pronunciation variations to optimally cope with the continuous speech recognizer. In this lexicon model, the baseform of words are represented by subword states and probability distribution of subwords as hidden Markov model. Also, proposed approach can be applied to system employing non-linguistic recognition units and lexicon is automatically trained from a training utterances. In speaker independent speech recognition tests using a 3000 word continuous speech database, the proposed system improves the word accuracy by about 27.8% and the sentence accuracy by about 22.4%.

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تاریخ انتشار 1997