Computer-aided teaching mode of oral English intelligent learning based on speech recognition and network assistance

Author:

Hai Yanfei1

Affiliation:

1. School of Foreign Languages, Inner Mongolia University for Nationalities, Tongliao 028000, Inner Mongolia Autonomous Region, China

Abstract

The purpose of this paper is to use English specific syllables and prosodic features in spoken speech data to carry out English spoken recognition, and to explore effective methods for the design and application of English speech detection and automatic recognition systems. The method proposed by this study is a combination of SVM_FF based classifier, SVM_IER based classifier and syllable classifier. Compared with the method based on the combination of other phonological characteristics such as phonological rate, intensity, formant and energy statistics and pronunciation rate, and the syllable-based classifier based on specific syllable training, a better recognition rate is obtained. In addition, this study conducts simulation experiments on the proposed English recognition and identification method based on specific syllables and prosodic features and analyzes the experimental results. The result found that the recognition performance of the English spoken recognition system constructed by this study is significantly better than the traditional model.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

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