Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors
Affect inextricably plays a critical role in the learning process. In this study, we investigate the multimodal fusion of facial, keystrokes, mouse clicks, head posture and contextual features for the detection of student’s frustration in an Affective Tutoring System. The results (AUC=0.64) demonstr...
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sg-smu-ink.sis_research-80632022-04-07T08:53:56Z Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors FWA, Hua Leong MARSHALL, Lindsay Affect inextricably plays a critical role in the learning process. In this study, we investigate the multimodal fusion of facial, keystrokes, mouse clicks, head posture and contextual features for the detection of student’s frustration in an Affective Tutoring System. The results (AUC=0.64) demonstrated empirically that a multimodal approach offers higher accuracy and better robustness as compared to a unimodal approach. In addition, the inclusion of keystrokes and mouse clicks makes up for the detection gap where video based sensing modes (facial and head postures) are not available. The findings in this paper will dovetail to our end research objective of optimizing the learning of students by adapting empathetically or tailoring to their affective states. 2018-10-01T07:00:00Z text application/pdf https://ink.library.smu.edu.sg/sis_research/7060 https://ink.library.smu.edu.sg/context/sis_research/article/8063/viewcontent/2018_PPIG_29th_fwa.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Databases and Information Systems |
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Databases and Information Systems FWA, Hua Leong MARSHALL, Lindsay Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
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Affect inextricably plays a critical role in the learning process. In this study, we investigate the multimodal fusion of facial, keystrokes, mouse clicks, head posture and contextual features for the detection of student’s frustration in an Affective Tutoring System. The results (AUC=0.64) demonstrated empirically that a multimodal approach offers higher accuracy and better robustness as compared to a unimodal approach. In addition, the inclusion of keystrokes and mouse clicks makes up for the detection gap where video based sensing modes (facial and head postures) are not available. The findings in this paper will dovetail to our end research objective of optimizing the learning of students by adapting empathetically or tailoring to their affective states. |
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text |
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FWA, Hua Leong MARSHALL, Lindsay |
author_facet |
FWA, Hua Leong MARSHALL, Lindsay |
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FWA, Hua Leong |
title |
Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
title_short |
Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
title_full |
Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
title_fullStr |
Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
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Investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
title_sort |
investigating multimodal affect sensing in an affective tutoring system using unobtrusive sensors |
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Institutional Knowledge at Singapore Management University |
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2018 |
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https://ink.library.smu.edu.sg/sis_research/7060 https://ink.library.smu.edu.sg/context/sis_research/article/8063/viewcontent/2018_PPIG_29th_fwa.pdf |
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