oa Face Emotion Recognition by Machine Learning
- Authors: Sarthak Patra1, Kushagra Singh Yadav2, Yogesh Kumar3
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View Affiliations Hide AffiliationsAffiliations: 1 Department of Electronics & Communication, Amity University Uttar Pradesh, Noida, India 2 Department of Electronics & Communication, Amity University Uttar Pradesh, Noida, India 3 Department of Electronics & Communication, Amity University Uttar Pradesh, Noida, India
- Source: Global Emerging Innovation Summit (GEIS-2021) , pp 216-221
- Publication Date: November 2021
- Language: English
Face Emotion Recognition by Machine Learning, Page 1 of 1
< Previous page | Next page > /docserver/preview/fulltext/9781681089010/chapter-24-1.gifDetection of Facial expressions and emotions is always an easy task for humans but to achieve the same task using different computer-based algorithms is a challenging task. It is possible to detect emotions from images using various machine learning algorithms as there is a huge advancement in computer vision and machine learning over the years. Programmed face appearance acknowledgment is an effectively arising research in Emotion Recognition. In this paper, the Convolutional Neural Network (CNN) which is a subset of AI is rehearsed as a way to deal with outward appearance acknowledgment tasks. Thus, the proposed method is found to be more effective than other methods and has an accuracy of 92. Face appearances are the vital qualities of non-verbal correspondence. Non-verbal explanations are imparted through outward appearances. Face looks are the delicate indications of the greater correspondence. Nonverbal correspondence implies correspondence among people and animals through the eye to eye association, signals, outward appearances, non-verbal correspondence, and paralanguage. Human facial expressions can be recognized by using deep learning.
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