학술논문
Classification of Manners of the Prevocalic Alveolar Consonants in Machine Learning Using Dynamic Formant Transitions of Vowels in Korean Spontaneous Speech
이용수 11
- 영문명
- Classification of Manners of the Prevocalic Alveolar Consonants in Machine Learning Using Dynamic Formant Transitions of Vowels in Korean Spontaneous Speech
- 발행기관
- 현대문법학회
- 저자명
- 홍순현(Soonhyun Hong)
- 간행물 정보
- 『현대문법연구』제121호, 149~176쪽, 전체 28쪽
- 주제분류
- 인문학 > 언어학
- 파일형태
- 발행일자
- 2024.03.30

국문 초록
영문 초록
The present study tried to classify the prevocalic manners of alveolar consonants using the formant transitions of the vowel in a Korean spontaneous speech corpus. Random forest and neural network models were trained and tested on selections of F1, F2, and F3 samples taken at the vowel onset and target of the vowel. It was found that prevocalic manners could not be manifested properly by the samples of any one or two formants, taken singly at the vowel onset or doubly at the vowel onset and target. Rather, both models trained on all the F1, F2, and F3 measurements taken doubly at the vowel onset and target, manifested the prevocalic manners robustly, though the random forest model outperformed the neural network model. The former model was further trained on additional predictors. Vowel identity facilitated model classification substan- tially more than F0, gender, speaking rate, and vowel duration. The contribution of the latter predictors was rather marginal.
목차
1. Introduction
2. Assumptions and Manner Classification Models
3. Method
4. Analyses and Discussion
5. Further Discussion
References
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