MALSORI (대한음성학회지:말소리)
- Issue 62
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- Pages.97-112
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- 2007
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- 1226-1173(pISSN)
A Multi-Model Based Noisy Speech Recognition Using the Model Compensation Method
다 모델 방식과 모델보상을 통한 잡음환경 음성인식
Abstract
The speech recognizer in general operates in noisy acoustical environments. Many research works have been done to cope with the acoustical variations. Among them, the multiple-HMM model approach seems to be quite effective compared with the conventional methods. In this paper, we consider a multiple-model approach combined with the model compensation method and investigate the necessary number of the HMM model sets through noisy speech recognition experiments. By using the data-driven Jacobian adaptation for the model compensation, the multiple-model approach with only a few model sets for each noise type could achieve comparable results with the re-training method.