Abstract
Recognizing the patient's emotions using deep learning techniques has attracted significant attention recently due to technological advancements. Automatically identifying the emotions can help build smart healthcare centers that can detect depression and stress among the patients in order to start the medication early. Using advanced technology to identify emotions is one of the most exciting topics as it defines the relationships between humans and machines. Machines learned how to predict emotions by adopting various methods. In this survey, we present recent research in the field of using neural networks to recognize emotions. We focus on studying emotions' recognition from speech, facial expressions, and audio-visual input and show the different techniques of deploying these algorithms in the real world. These three emotion recognition techniques can be used as a surveillance system in healthcare centers to monitor patients. We conclude the survey with a presentation of the challenges and the related future work to provide an insight into the applications of using emotion recognition.
| Original language | English |
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| Title of host publication | 2021 International Wireless Communications and Mobile Computing, IWCMC 2021 |
| Publisher | Institute of Electrical and Electronics Engineers Inc. |
| Pages | 681-687 |
| Number of pages | 7 |
| ISBN (Electronic) | 9781728186160 |
| DOIs | |
| Publication status | Published - 2021 |
| Externally published | Yes |
| Event | 17th IEEE International Wireless Communications and Mobile Computing, IWCMC 2021 - Virtual, Online, China Duration: 28 Jun 2021 → 2 Jul 2021 |
Publication series
| Name | 2021 International Wireless Communications and Mobile Computing, IWCMC 2021 |
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Conference
| Conference | 17th IEEE International Wireless Communications and Mobile Computing, IWCMC 2021 |
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| Country/Territory | China |
| City | Virtual, Online |
| Period | 28/06/21 → 2/07/21 |
Bibliographical note
Publisher Copyright:© 2021 IEEE
Keywords
- Audio-visual emotion recognition
- Emotion recognition
- Facial emotion recognition
- Neural networks
- Speech emotion recognition