作者
Y Chow, M Dunham, Owen Kimball, M Krasner, G Kubala, John Makhoul, P Price, S Roucos, R Schwartz
发表日期
1987/4/6
研讨会论文
ICASSP'87. IEEE International Conference on Acoustics, Speech, and Signal Processing
卷号
12
页码范围
89-92
出版商
IEEE
简介
In this paper, we describe BYBLOS, the BBN continuous speech recognition system. The system, designed for large vocabulary applications, integrates acoustic, phonetic, lexical, and linguistic knowledge sources to achieve high recognition performance. The basic approach, as described in previous papers [1, 2], makes extensive use of robust context-dependent models of phonetic coarticulation using Hidden Markov Models (HMM). We describe the components of the BYBLOS system, including: signal processing frontend, dictionary, phonetic model training system, word model generator, grammar and decoder. In recognition experiments, we demonstrate consistently high word recognition performance on continuous speech across: speakers, task domains, and grammars of varying complexity. In speaker-dependent mode, where 15 minutes of speech is required for training to a speaker, 98.5% word accuracy …
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Y Chow, M Dunham, O Kimball, M Krasner, G Kubala… - ICASSP'87. IEEE International Conference on …, 1987