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Automatic Emotion Recognition through Facial Expression Analysis in Merged Images Based on an Artificial Neural Network

机译:基于人工神经网络的合并图像人脸表情分析自动情感识别

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摘要

This paper focuses on a system of recognizing human’s emotion from a detected human’s face. The analyzed information is conveyed by the regions of the eye and the mouth into a merged new image in various facial expressions pertaining to six universal basic facial emotions. The output information obtained could be fed as an input to a machine capable to interact with social skills, in the context of building socially intelligent systems. The methodology uses a classification technique of information into a new fused image which is composed of two blocks integrated by the area of the eyes and mouth, very sensitive areas to changes human’s expression and that are particularly relevant for the decoding of emotional expressions. Finally we use the merged image as an input to a feed-forward neural network trained by back-propagation. Such analysis of merged images makes it possible, obtain relevant information through the combination of proper data in the same image and reduce the training set time while preserved classification rate. It is shown by experimental results that the proposed algorithm can detect emotion with good accuracy.
机译:本文着重于一种从检测到的人脸识别人的情绪的系统。经分析的信息通过眼睛和嘴巴的区域传达为涉及六种普遍基本面部表情的各种面部表情合并的新图像。在构建社交智能系统的情况下,可以将获得的输出信息作为输入输入到能够与社交技能进行交互的机器上。该方法使用信息分类技术将图像融合到一个新的融合图像中,该融合图像由两个区域组成,这些区域由眼睛和嘴巴区域,非常敏感的区域(这些区域对改变人类的表情)进行了整合,尤其与情感表情的解码有关。最终,我们将合并后的图像用作通过反向传播训练的前馈神经网络的输入。合并图像的这种分析使得通过在同一图像中适当数据的组合获得相关信息成为可能,并在保持分类率的同时减少了训练时间。实验结果表明,该算法可以很好地检测情绪。

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