Bi-Model Engagement Emotion Recognition Based on Facial and Upper-Body Landmarks and Machine Learning Approaches

Author:

Alhasson Haifa F.1,Alsaheel Ghada M.1,Alharbi Noura S.1,Alsalamah Alhatoon A.1,Alhujilan Joud M.1,Alharbi Shuaa S.1ORCID

Affiliation:

1. Department of Information Technology, College of Computer, Qassim University, Buraydah, Saudi Arabia

Abstract

Customer satisfaction can be measured using facial expression recognition. The current generation of artificial intelligence systems heavily depends on facial features such as eyebrows, eyes, and foreheads. This dependence introduces a limitation as people generally prefer to conceal their genuine emotions. As body gestures are difficult to conceal and can convey a more detailed and accurate emotional state, the authors incorporate upper-body gestures as an additional feature that improves the predicted emotion's accuracy. This work uses an ensemble machine-learning model that integrates support vector machines, random forest classifiers, and logistic regression classifiers. The proposed method detects emotions from facial expressions and upper-body movements and is experimentally evaluated and has been found to be effective, with an accuracy rate of 97% on the EMOTIC dataset and 99% accuracy on MELD dataset.

Publisher

IGI Global

Subject

Marketing,Strategy and Management,Computer Networks and Communications,Computer Science Applications,Management Information Systems

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