Abstract:
Rhythm and intonation are important factors in the English sentence pronunciation evaluation. In this paper, the Mel Frequency Cepstrum Coefficient (MFCC) feature and Hid...Show MoreMetadata
Abstract:
Rhythm and intonation are important factors in the English sentence pronunciation evaluation. In this paper, the Mel Frequency Cepstrum Coefficient (MFCC) feature and Hidden Markov Model (HMM) algorithm are used to establish a model for speech recognition. Then it makes an evaluation of English sentence pronunciation focusing on rhythm and intonation, and gives feedbacks and recommendations about pronunciation problems to the users based on the expert knowledge. Verified by experiments, the model has a certain precision and reliability. It has applied to a pronunciation evaluation system which can improve users' pronunciation.
Date of Conference: 15-17 November 2014
Date Added to IEEE Xplore: 15 January 2015
ISBN Information:
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- IEEE Keywords
- Index Terms
- English Sentences ,
- Evaluation System ,
- Hidden Markov Model ,
- Speech Recognition ,
- Experimental Analysis ,
- Fundamental Frequency ,
- Language Learning ,
- Fitness Levels ,
- Variable Duration ,
- Autocorrelation Function ,
- Foreign Countries ,
- Dynamic Stress ,
- Median Filter ,
- Typical Language ,
- Sentence Test ,
- Recognition Module ,
- Prosodic Features ,
- Parameters In Formula ,
- Computer-assisted Language Learning ,
- Linguistic Expertise ,
- Speech Units
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- English Sentences ,
- Evaluation System ,
- Hidden Markov Model ,
- Speech Recognition ,
- Experimental Analysis ,
- Fundamental Frequency ,
- Language Learning ,
- Fitness Levels ,
- Variable Duration ,
- Autocorrelation Function ,
- Foreign Countries ,
- Dynamic Stress ,
- Median Filter ,
- Typical Language ,
- Sentence Test ,
- Recognition Module ,
- Prosodic Features ,
- Parameters In Formula ,
- Computer-assisted Language Learning ,
- Linguistic Expertise ,
- Speech Units
- Author Keywords