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A Comprehensive Review of Multimodal Analysis in Education
by
Romero, Francisco P.
, Olivas, Jose A.
, Menéndez-Domínguez, Víctor H.
, Serrano-Guerrero, Jesus
, Montoro-Montarroso, Andres
, Guerrero-Sosa, Jared D. T.
in
Affect (Psychology)
/ Artificial intelligence
/ Collaboration
/ Data entry
/ Deep learning
/ Early childhood education
/ educational data mining
/ Educational research
/ Forecasts and trends
/ Geospatial data
/ Group work in education
/ Language
/ Learning analytics
/ Machine learning
/ multimodal feature extraction
/ multimodal learning analytics
/ Physiology
/ Science education
/ Semiotics
/ Sensors
/ Social interaction
/ Team learning approach in education
2025
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A Comprehensive Review of Multimodal Analysis in Education
by
Romero, Francisco P.
, Olivas, Jose A.
, Menéndez-Domínguez, Víctor H.
, Serrano-Guerrero, Jesus
, Montoro-Montarroso, Andres
, Guerrero-Sosa, Jared D. T.
in
Affect (Psychology)
/ Artificial intelligence
/ Collaboration
/ Data entry
/ Deep learning
/ Early childhood education
/ educational data mining
/ Educational research
/ Forecasts and trends
/ Geospatial data
/ Group work in education
/ Language
/ Learning analytics
/ Machine learning
/ multimodal feature extraction
/ multimodal learning analytics
/ Physiology
/ Science education
/ Semiotics
/ Sensors
/ Social interaction
/ Team learning approach in education
2025
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Do you wish to request the book?
A Comprehensive Review of Multimodal Analysis in Education
by
Romero, Francisco P.
, Olivas, Jose A.
, Menéndez-Domínguez, Víctor H.
, Serrano-Guerrero, Jesus
, Montoro-Montarroso, Andres
, Guerrero-Sosa, Jared D. T.
in
Affect (Psychology)
/ Artificial intelligence
/ Collaboration
/ Data entry
/ Deep learning
/ Early childhood education
/ educational data mining
/ Educational research
/ Forecasts and trends
/ Geospatial data
/ Group work in education
/ Language
/ Learning analytics
/ Machine learning
/ multimodal feature extraction
/ multimodal learning analytics
/ Physiology
/ Science education
/ Semiotics
/ Sensors
/ Social interaction
/ Team learning approach in education
2025
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A Comprehensive Review of Multimodal Analysis in Education
Journal Article
A Comprehensive Review of Multimodal Analysis in Education
2025
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Overview
Multimodal learning analytics (MMLA) has become a prominent approach for capturing the complexity of learning by integrating diverse data sources such as video, audio, physiological signals, and digital interactions. This comprehensive review synthesises findings from 177 peer-reviewed studies to examine the foundations, methodologies, tools, and applications of MMLA in education. It provides a detailed analysis of data collection modalities, feature extraction pipelines, modelling techniques—including machine learning, deep learning, and fusion strategies—and software frameworks used across various educational settings. Applications are categorised by pedagogical goals, including engagement monitoring, collaborative learning, simulation-based environments, and inclusive education. The review identifies key challenges, such as data synchronisation, model interpretability, ethical concerns, and scalability barriers. It concludes by outlining future research directions, with emphasis on real-world deployment, longitudinal studies, explainable artificial intelligence, emerging modalities, and cross-cultural validation. This work aims to consolidate current knowledge, address gaps in practice, and offer practical guidance for researchers and practitioners advancing multimodal approaches in education.
Publisher
MDPI AG
Subject
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