Artificial intelligence-based language learning: illuminating the impact on speaking skills and self-regulation in Chinese EFL context

心理学 元认知 自主学习 背景(考古学) 控制(管理) 外语 自治 自主学习 数学教育 计算机科学 语言教育 理解法 人工智能 认知 古生物学 神经科学 政治学 法学 生物
作者
Hongliang Qiao,Aruna Zhao
出处
期刊:Frontiers in Psychology [Frontiers Media]
卷期号:14: 1255594-1255594 被引量:181
标识
DOI:10.3389/fpsyg.2023.1255594
摘要

Introduction: This study investigated the effectiveness of artificial intelligence-based instruction in improving second language (L2) speaking skills and speaking self-regulation in a natural setting. The research was conducted with 93 Chinese English as a foreign language (EFL) students, randomly assigned to either an experimental group receiving AI-based instruction or a control group receiving traditional instruction. Methods: The AI-based instruction leveraged the Duolingo application, incorporating natural language processing technology, interactive exercises, personalized feedback, and speech recognition technology. Pre- and post-tests were conducted to assess L2 speaking skills and self-regulation abilities. Results: The results of the study demonstrated that the experimental group, which received AI-based instruction, exhibited significantly greater improvement in L2 speaking skills compared to the control group. Moreover, participants in the experimental group reported higher levels of self-regulation. Discussion: These findings suggest that AI-based instruction effectively enhances L2 speaking skills and fosters self-regulatory processes among language learners, highlighting the potential of AI technology to optimize language learning experiences and promote learners' autonomy and metacognitive strategies in the speaking domain. However, further research is needed to explore the long-term effects and specific mechanisms underlying these observed improvements.
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