2021
DOI: 10.1155/2021/5570870
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Facial Expression Recognition of Instructor Using Deep Features and Extreme Learning Machine

Abstract: Classroom communication involves teacher’s behavior and student’s responses. Extensive research has been done on the analysis of student’s facial expressions, but the impact of instructor’s facial expressions is yet an unexplored area of research. Facial expression recognition has the potential to predict the impact of teacher’s emotions in a classroom environment. Intelligent assessment of instructor behavior during lecture delivery not only might improve the learning environment but also could save time and … Show more

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Cited by 44 publications
(11 citation statements)
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“…We have compared our proposed hybrid model with recent state-of-the-art FER methods, including Inception-Resnet and LSTM [ 35 ], DCMA-CNN [ 27 ], WRF [ 22 ], LMRF [ 24 ], VGG11+SVM [ 40 ], DNN+RELM [ 43 ], LBP+ORB+SVM [ 25 ], and MDNETWORK [ 33 ] on the CK+ dataset. These works adopted machine learning algorithms and deep neural networks in combined manner or individually used.…”
Section: Resultsmentioning
confidence: 99%
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“…We have compared our proposed hybrid model with recent state-of-the-art FER methods, including Inception-Resnet and LSTM [ 35 ], DCMA-CNN [ 27 ], WRF [ 22 ], LMRF [ 24 ], VGG11+SVM [ 40 ], DNN+RELM [ 43 ], LBP+ORB+SVM [ 25 ], and MDNETWORK [ 33 ] on the CK+ dataset. These works adopted machine learning algorithms and deep neural networks in combined manner or individually used.…”
Section: Resultsmentioning
confidence: 99%
“…Among them, WRF [ 22 ], LMRF [ 24 ], and LBP+ORB+SVM [ 25 ] have created their FER models using machine-learning-based feature extraction methods and classification mechanisms. In the remaining works, Inception-Resnet and LSTM [ 35 ], DNN+RELM [ 43 ], VGG11+SVM [ 40 ] have used both deep neural networks and classifiers along with handcrafted features extracted by machine learning. DCMA-CNN [ 27 ] and MDNETWORK [ 33 ] were implemented using multi branch convolutional neural networks.…”
Section: Resultsmentioning
confidence: 99%
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“…An automated strategy is used by deep learning algorithms to get attributes that are exclusive to them. [19].…”
Section: A Deep Learning Techniquesmentioning
confidence: 99%
“…Today the need for emotion classification has surpassed the barrier of age because of the global shift towards online platforms such as online education to teach or gain knowledge virtually globally to all remote areas, IoT enabled health monitoring systems and temperature setters in cars and households, robotics, psychiatric evaluation based on violent behaviors of criminals or those mentally disturbed, mood swings study on adolescents to help guide them mentally, deepfake detection, gaming, and many such applications are currently being innovated using state of the art technologies. Also, numerous studies have been conducted on Facial Emotion Recognition by using Computer vision because of its practicality in intelligent robotics, health-related treatment, IoT, Security surveillance, criminal psychological analysis, observation of driver exhaustion, and other human-computer interfaces mechanisms [7][8][9]. With more virtual connectivity through videos and images, the need to adopt the latest technology based on people's emotions is now a critical factor in driving user-friendliness and maximum user satisfaction.…”
Section: Introductionmentioning
confidence: 99%