International Journal of Electrical, Electronics and Data Communication (IJEEDC)
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Statistics report
Apr. 2024
Submitted Papers : 80
Accepted Papers : 10
Rejected Papers : 70
Acc. Perc : 12%
Issue Published : 133
Paper Published : 1712
No. of Authors : 4737
  Journal Paper


Paper Title :
Facial Expression Recognition using Convolutional Neural Network

Author :Abhinandan, Anand Singh Chauhan, Astitwa Roy, Chanda Singh, Vani B P

Article Citation :Abhinandan ,Anand Singh Chauhan ,Astitwa Roy ,Chanda Singh ,Vani B P , (2022 ) " Facial Expression Recognition using Convolutional Neural Network " , International Journal of Electrical, Electronics and Data Communication (IJEEDC) , pp. 9-14, Volume-10,Issue-6

Abstract : Abstract- Enhancing modern-day machines or computer systems for recognizing different facial expressions and also to know about the emotions of humans from them in real-world scenarios is a demanding and challenging area of research. Facial expression recognition (FER) explains systems how recognizing emotions is considered one of the major applications in the field of analyzing patterns and artificial intelligence. The expressions of faces which is happy, sad, angry, surprise, fear, and disgusted are identical across culture. The main goal of this project work is to build a Facial Expression Recognition System to recognize various human emotions. The system is based on the concept of a very well-known Convolution Neural Network (CNN). The live video stream are recorded using the webcam present in the computer systems or which is given as an input for facial feature extractions and is then provided to the network for classification into the seven basic human emotions which finally is the main goal of this research work. The model is made up of various activation layers and each of them is created to undergo various training techniques. The paper also discusses the results of this research work stating the techniques to improve the performance of the model. Keywords - Convolutional Neural Network (CNN), Emotion Detection, Validation Accuracy, Training methods, Human Facial Expressions.

Type : Research paper

Published : Volume-10,Issue-6


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