JOURNAL ARTICLE

Local feature extraction based facial emotion recognition: a survey

Khadija SlimaniMohamed KasYoussef El MerabetYassine RuichekRochdi Messoussi

Year: 2020 Journal:   International Journal of Power Electronics and Drive Systems/International Journal of Electrical and Computer Engineering Vol: 10 (4)Pages: 4080-4080   Publisher: Institute of Advanced Engineering and Science (IAES)

Abstract

Notwithstanding the recent technological advancement, the identification of facial and emotional expressions is still one of the greatest challenges scientists have ever faced. Generally, the human face is identified as a composition made up of textures arranged in micro-patterns. Currently, there has been a tremendous increase in the use of local binary pattern based texture algorithms which have invariably been identified to being essential in the completion of a variety of tasks and in the extraction of essential attributes from an image. Over the years, lots of LBP variants have been literally reviewed. However, what is left is a thorough and comprehensive analysis of their independent performance. This research work aims at filling this gap by performing a large-scale performance evaluation of 46 recent state-of-the-art LBP variants for facial expression recognition. Extensive experimental results on the well-known challenging and benchmark KDEF, JAFFE, CK and MUG databases taken under different facial expression conditions, indicate that a number of evaluated state-of-the-art LBP-like methods achieve promising results, which are better or competitive than several recent state-of-the-art facial recognition systems. Recognition rates of 100%, 98.57%, 95.92% and 100% have been reached for CK, JAFFE, KDEF and MUG databases, respectively.

Keywords:
Local binary patterns Benchmark (surveying) Computer science Facial expression Facial recognition system Artificial intelligence Feature extraction Three-dimensional face recognition Facial expression recognition Face (sociological concept) Pattern recognition (psychology) Identification (biology) Feature (linguistics) Texture (cosmology) Image (mathematics) Face detection Histogram

Metrics

13
Cited By
1.05
FWCI (Field Weighted Citation Impact)
66
Refs
0.78
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Face and Expression Recognition
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Advanced Computing and Algorithms
Social Sciences →  Social Sciences →  Urban Studies
Emotion and Mood Recognition
Social Sciences →  Psychology →  Experimental and Cognitive Psychology

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