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Human Behavior Understanding in Big Multimedia Data Using CNN based Facial Expression Recognition

机译:基于CNN基础表情识别的大多媒体数据中的人类行为理解

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Human behavior analysis from big multimedia data has become a trending research area with applications to various domains such as surveillance, medical, sports, and entertainment. Facial expression analysis is one of the most prominent clues to determine the behavior of an individual, however, it is very challenging due to variations in face poses, illuminations, and different facial tones. In this paper, we analyze human behavior using facial expressions by considering some famous TV-series videos. Firstly, we detect faces using Viola-jones algorithm followed by tracking through Kanade-Lucas-Tomasi (KLT) algorithm. Secondly, we use histogram of oriented gradients (HOG) features with support vector machine (SVM) classifier for facial recognition. Next, we recognize facial expressions using the proposed light-weight convolutional neural network (CNN). We utilize data augmentation techniques to overcome the issue of appearance of faces from different views and lightening conditions in video data. Finally, we predict human behaviors using an occurrence matrix acquired from facial recognition and expressions. The subjective and objective experimental evaluations prove better performance for both facial expression recognition and human behavior understanding.
机译:来自大多数多媒体数据的人类行为分析已成为一个带有应用于各个领域的趋势研究区域,如监视,医疗,体育和娱乐。面部表情分析是确定个人行为的最突出的线索之一,然而,由于面部姿势,照明和不同面部色调的变化,它是非常具有挑战性的。在本文中,通过考虑一些着名的电视系列视频,我们使用面部表达分析人类行为。首先,我们使用Viola-Jones算法检测面部,然后通过Kanade-Lucas-Tomasi(KLT)算法跟踪。其次,我们使用带有支持向量机(SVM)分类器的面向渐变(HOG)功能的直方图进行面部识别。接下来,我们识别使用所提出的轻量级卷积神经网络(CNN)的面部表达。我们利用数据增强技术来克服来自不同视图和视频数据中的亮度条件的面孔出现问题。最后,我们使用从面部识别和表达中获取的发生矩阵来预测人类行为。主观和客观的实验评估对于面部表情识别和人类行为理解来说证明了更好的表现。

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