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Systematic review of various feature extraction techniques for facial emotion recognition system

机译:面部情感识别系统各种特征提取技术的系统综述

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Facial emotion recognition (FER) is the task of recognising human emotions from images and videos. Communicating through facial emotions is a kind of non-verbal communication and it reflects a person's inner thoughts and mental states. In the present study, various existing geometric and appearance based feature extraction techniques used in FER are reviewed in tabular form. The main motive of this paper is to analyse the performance of these techniques on the bases of accuracy on different datasets like JAFFE, CK+, CK and MMI. After extensive research on feature extraction techniques for FERS, it is found that the appearance feature-based techniques achieved maximum accuracy and more favourable as compared to geometric feature-based techniques. Finally, the paper concludes with the various challenges encountered for feature extraction in the field of FERS which need to be addressed in the future.
机译:面部情感识别(FER)是识别图像和视频的人类情绪的任务。 通过面部情绪沟通是一种非言语沟通,它反映了一个人的内心思想和精神状态。 在本研究中,以表格形式回顾FER中使用的各种现有的几何和外观的特征提取技术。 本文的主要动力是分析这些技术对贾维特,CK +,CK和MMI等不同数据集的准确性基础的性能。 在对FERS的特征提取技术进行广泛研究之后,发现与基于几何特征的技术相比,基于外观的技术技术实现了最大精度和更有利的技术。 最后,本文缔结了在未来需要解决的手段领域的特征提取遇到的各种挑战。

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