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Positive/Negative Emotion Detection from RGB-D Upper Body Images

机译:RGB-D上半身图像的正/负面情绪检测

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The ability to identify users' mental states represents a valuable asset for improving human-computer interaction. Considering that spontaneous emotions are conveyed mostly through facial expressions and the upper Body movements, we propose to use these modalities together for the purpose of negative/positive emotion classification. A method that allows the recognition of mental states from videos is proposed. Based on a dataset composed with RGB-D movies a set of indictors of positive and negative is extracted from 2D (RGB) information. In addition, a geometric framework to model the depth flows and capture human body dynamics from depth data is proposed. Due to temporal changes in pixel and depth intensity which characterize spontaneous emotions dataset, the depth features are used to define the relation between changes in upper body movements and the affect. We describe a space of depth and texture information to detect the mood of people using upper body postures and their evolution across time. The experimentation has been performed on Cam3D dataset and has showed promising results.
机译:识别用户心理状态的能力代表了一种有价值的资产,用于改善人机互动。考虑到自发情绪主要通过面部表情和上半身的运动来传达,我们建议使用这些模态以用于负面/正情感分类。提出了一种允许从视频识别心理状态的方法。基于使用RGB-D电影组成的数据集,从2D(RGB)信息中提取一组正面和否定的标识。另外,提出了一种以模拟深度流和捕获从深度数据捕获人体动态的几何框架。由于具有自发情绪数据集的像素和深度强度的时间变化,深度特征用于定义上身移动变化与影响之间的关系。我们描述了一种深度和纹理信息的空间,以检测使用上半身姿势的人们的情绪及其跨时间的演变。实验已经在CAM3D DataSet上进行,并显示出有前途的结果。

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