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On speaker-independent, speaker-dependent, and speaker-adaptive speech recognition

机译:关于与说话者无关,与说话者有关以及与说话者自适应的语音识别

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The DARPA Resource Management task is used as a domain for investigating the performance of speaker-independent, speaker-dependent, and speaker-adaptive speech recognition. The error rate of the speaker-independent recognition system, SPHINX, was reduced substantially by incorporating between-word triphone models additional dynamic features, and sex-dependent, semicontinuous hidden Markov models. The error rate for speaker-independent recognition was 4.3%. On speaker-dependent data, the error rate was further reduced to 2.6-1.4% with 600-2400 training sentences for each speaker. Using speaker-independent models, the authors studied speaker-adaptive recognition. Both codebooks and output distributions were considered for adaptation. It was found that speaker-adaptive systems outperform both speaker-independent and speaker-dependent systems, suggesting that the most effective system is one that begins with speaker-independent training and continues to adapt to users.
机译:DARPA资源管理任务用作研究独立于说话者,独立于说话者和自适应说话者的语音识别性能的领域。通过结合词间三音节模型附加的动态功能以及性别相关的半连续隐马尔可夫模型,大大降低了与说话者无关的识别系统SPHINX的错误率。与说话者无关的识别的错误率为4.3%。根据说话者相关的数据,每个说话者的600-2400个训练句子的错误率进一步降低到2.6-1.4%。使用与说话者无关的模型,作者研究了说话者自适应识别。码本和输出分布都被考虑进行调整。发现说话者自适应系统的性能优于说话者独立系统和说话者独立系统,这表明最有效的系统是从说话者独立训练开始并持续适应用户的系统。

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