TONE RECOGNITION OF CONTINUOUS THAI SPEECH UNDER TONAL ASSIMILATION AND DECLINATION EFFECTS USING HALF-TONE MODEL

Author:

THUBTHONG NUTTAKORN1,KIJSIRIKUL BOONSERM1

Affiliation:

1. Machine Intelligence & Knowledge Discovery Laboratory, Department of Computer Engineering, Chulalongkorn University, Bangkok, 10330, Thailand

Abstract

This paper presents a method for continuous Thai tone recognition. One of the main problems in tone recognition is that several interacting factors affect F0realization of tones. In this paper, we focus on the tonal assimilation and declination effects. These effects are compensated by the tone information of neighboring syllables, the F0downdrift and the context-dependent tone model. However, the context-dependent tone model is too large and its training time is very long. To overcome these problems, we propose a novel model called the half-tone model. The experiments, which compare all tone features and all tone models, were simulated by feedforward neural networks. The results show that the proposed tone features increase the recognition rates and the half-tone model outperforms conventional tone models, i.e. context-independent and context-dependent tone models, in terms of recognition rate and speed. The best results are 94.77% and 93.82% for the inside test and outside test, respectively.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Information Systems,Control and Systems Engineering,Software

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Voice Impersonation for Thai Speech Using CycleGAN over Prosody;2022 4th International Conference on Management Science and Industrial Engineering (MSIE);2022-04-28

2. Automatic Speech Discrimination Assessment Methods Based on Event-Related Potentials (ERP);Sensors;2022-04-01

3. Automatic Speech Recognition System for Tonal Languages: State-of-the-Art Survey;Archives of Computational Methods in Engineering;2020-02-24

4. Durian Ripeness Striking Sound Recognition Using N-gram Models with N-best Lists and Majority Voting;Advances in Intelligent Systems and Computing;2014

5. Recognition of Tones in YorÙbÁ Speech: Experiments With Artificial Neural Networks;Studies in Computational Intelligence;2008

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