一种新的神经模糊方法来确定人类的情绪

Suvam Chatterjee, Hao Shi
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引用次数: 22

摘要

面部表情是人类相互交流最自然、最本能的手段,对人类面部表情的自动分析一直是计算机视觉和机器学习中一个非常具有挑战性的研究领域。本文提出了一种基于局部二值模式(LBP)和新发展的特征矩阵的人类情感检测方法。使用LBP提取面部特征。然后结合一个独特的特征矩阵,应用于自适应神经模糊推理系统,生成快乐、悲伤、愤怒、厌恶和惊讶五种面部表情模型。通过改变JAFFE人脸数据库的邻域点数和半径,对不同的LBP技术进行了面部表情识别实验。该系统使用LBP(16,2)获得了很高的精度,优于大多数现有方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Neuro Fuzzy Approach to Human Emotion Determination
Facial expression is the most natural and instinctive means for human beings to communicate with each other Automatic analysis of human facial expression remains a very challenging area of research in computer vision and machine learning. In this paper, a novel human emotion detection is proposed based on well-known local binary pattern (LBP) and a newly developed feature matrix. Facial feature is extracted using LBP. A unique feature matrix is then combined to apply to Adaptive Neuro Fuzzy Inference System to generate five facial expression models, namely, happy, sad, angry, disgust and surprise. A number of experiments are carried out on facial expression determination with different LBP techniques by varying the number of points and radius of neighbourhood to JAFFE face database. The proposed system achieves very high accuracy with LBP(16,2) which has outperformed most of the existing methods.
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