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Spontaneous thermal facial expression analysis based on trajectory-pooled fisher vector descriptor

机译:基于轨迹池费舍尔向量描述符的自发性热面部表情分析

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We present a new descriptor for spontaneous facial expression recognition from videos acquired by a thermal sensor. Previous descriptors mostly compute features from RGB videos. It is difficult to process mixed and varied spontaneous expressions with a large ambiguity of facial appearances. In contrast, thermal imaging can measure autonomic activities, which are the physiological changes evoked by the autonomic nervous system regardless of the variety and ambiguity of facial appearances. This paper presents a new thermal video representation as so-called trajectory-pooled fisher vector descriptor (TFD). To get the local energy and temperature changes, we propose to use spatio-temporal orientation energy and acceleration of dense trajectory as low level features and further improve the discriminative capacity by aggregating the local feature using an improved fisher vector. The benefits of TFD in comparison with existing approaches are illustrated in two databases using different modalities: USTC-NVIE database and MMSE (a.k.a. BP4D+) database.
机译:我们提出了一种新的描述符,用于从由热传感器获取的视频中自发进行面部表情识别。以前的描述符主要根据RGB视频计算特征。很难处理具有多种歧义的面部表情的混合和各种自发表情。相反,热成像可以测量自主活动,自主活动是由自主神经系统引起的生理变化,而与面部外观的多样性和歧义无关。本文提出了一种新的热视频表示形式,即所谓的轨迹池费舍尔向量描述符(TFD)。为了获得局部能量和温度的变化,我们建议使用时空定向能量和密集轨迹的加速度作为低水平特征,并通过使用改进的Fisher向量聚合局部特征来进一步提高判别能力。与现有方法相比,TFD的好处在两个使用不同模式的数据库中得以说明:USTC-NVIE数据库和MMSE(又称BP4D +)数据库。

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