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Dynamic facial expression analysis based on extended spatio-temporal histogram of oriented gradients

机译:基于扩展的时空直方图的定向梯度动态面部表情分析

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摘要

Facial expression is crucial for proper analysis of a person's face. It is an indicator of the emotion of a person and thus has attracted the attention of many researchers. In this work, a novel local spatio-temporal descriptor is proposed for motion pattern detection. The proposed feature comprises histogram of 3D gradients and the gradients' variation over time to robustly describe the spatial and temporal information. It also incorporates spatio-temporal pyramid structure to handle different resolution and frame rate. To reduce the dimension of the feature, we applied genetic algorithm for region-based feature selection. We evaluated the performance of our proposed descriptors on facial expression recognition using the Cohn-Kanade (CK~+) database. The experimental results achieved 96.10% accuracy in detecting six basic emotions. The key advantages of our proposed method are: local and dynamic processing, simple implementation, high performance, and robustness to variation of video resolution or temporal sampling rate.
机译:面部表情对于正确分析人的脸至关重要。它是一个人情绪的指​​标,因此引起了许多研究人员的关注。在这项工作中,提出了一种新颖的局部时空描述符用于运动模式检测。提出的功能包括3D梯度的直方图和梯度随时间的变化,以稳健地描述空间和时间信息。它还合并了时空金字塔结构,以处理不同的分辨率和帧速率。为了减小特征的维数,我们将遗传算法应用于基于区域的特征选择。我们使用Cohn-Kanade(CK〜+)数据库评估了我们提出的描述符在面部表情识别方面的性能。实验结果在检测六种基本情绪方面达到了96.10%的准确性。我们提出的方法的主要优点是:本地和动态处理,简单的实现,高性能以及对视频分辨率或时间采样率变化的鲁棒性。

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