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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/25846
Title: Teachers' Vocal Expressions and Student Engagement in Asynchronous Video Learning
Authors: Suen, Hung-Yue
Su, Yu-Sheng 
Keywords: Acoustic analysis;natural language processing;machine learning;pedagogy;sentiment analysis;speech emotion
Issue Date: 11-Mar-2025
Publisher: TAYLOR & FRANCIS INC
Source: INTERNATIONAL JOURNAL OF HUMAN-COMPUTER INTERACTION
Abstract: 
Asynchronous video learning, including massive open online courses (MOOCs), offers flexibility but often lacks students' affective engagement. This study examines how teachers' verbal and nonverbal vocal emotive expressions influence students' self-reported affective engagement. Using computational acoustic and sentiment analysis, valence and arousal scores were extracted from teachers' verbal vocal expressions, and nonverbal vocal emotions were classified into six categories: anger, fear, happiness, neutral, sadness, and surprise. Data from 210 video lectures across four MOOC platforms and feedback from 738 students collected after class were analyzed. Results revealed that teachers' verbal emotive expressions, even with positive valence and high arousal, did not significantly impact engagement. Conversely, vocal expressions with positive valence and high arousal (e.g., happiness, surprise) enhanced engagement, while negative high-arousal emotions (e.g., anger) reduced it. These findings offer practical insights for instructional video creators, teachers, and influencers to foster emotional engagement in asynchronous video learning.
URI: http://scholars.ntou.edu.tw/handle/123456789/25846
ISSN: 1044-7318
DOI: 10.1080/10447318.2025.2474469
Appears in Collections:資訊工程學系

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