Sensors, Techniques, and Future Trends of Human-Engagement-Enabled Applications: A Review

被引:0
|
作者
Dai, Zhuangzhuang [1 ]
Zakka, Vincent Gbouna [1 ]
Manso, Luis J. [1 ]
Rudorfer, Martin [1 ]
Bernardet, Ulysses [1 ]
Zumer, Johanna [2 ]
Kavakli-Thorne, Manolya [3 ]
机构
[1] Aston Univ, Dept Appl AI & Robot Engn & Phys Sci, Birmingham B4 7ET, England
[2] Aston Univ, Inst Hlth & Neurodev, Sch Psychol, Birmingham B4 7ET, England
[3] Aston Univ, Aston Digital Futures Inst, Birmingham B4 7ET, England
关键词
human engagement; sensor-based systems; engagement estimation techniques; literature review; STUDENT ENGAGEMENT; PRIVACY CONCERNS; USER ACCEPTANCE; TECHNOLOGY; ATTENTION; RECOGNITION; ADHD; NEUROFEEDBACK; PROTECTION; DROWSINESS;
D O I
10.3390/a17120560
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Human engagement is a vital test research area actively explored in cognitive science and user experience studies. The rise of big data and digital technologies brings new opportunities into this field, especially in autonomous systems and smart applications. This article reviews the latest sensors, current advances of estimation methods, and existing domains of application to guide researchers and practitioners to deploy engagement estimators in various use cases from driver drowsiness detection to human-robot interaction (HRI). Over one hundred references were selected, examined, and contrasted in this review. Specifically, this review focuses on accuracy and practicality of use in different scenarios regarding each sensor modality, as well as current opportunities that greater automatic human engagement estimation could unlock. It is highlighted that multimodal sensor fusion and data-driven methods have shown significant promise in enhancing the accuracy and reliability of engagement estimation. Upon compiling the existing literature, this article addresses future research directions, including the need for developing more efficient algorithms for real-time processing, generalization of data-driven approaches, creating adaptive and responsive systems that better cater to individual needs, and promoting user acceptance.
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页数:28
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