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A biologically inspired approach for fusing facial expression and appearance for emotion recognition

机译:融合面部表情和外观以进行情感识别的受生物学启发的方法

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Facial emotion recognition from video is an exemplar case where both humans and computers underperform. In recent emotion recognition competitions, top approaches were using either geometric relationships that best captured facial dynamics or an accurate registration technique to develop appearance features. These two methods capture two different types of facial information similarly to how the human visual system divides information when perceiving faces. In this paper, we propose a biologically-inspired fusion approach that emulates this process. The efficacy of the approach is tested with the Audio/Visual Emotion Challenge 2011 data set, a non-trivial data set where state-of-the-art approaches perform under chance. The proposed approach increases classification rates by 18.5% on publicly available data.
机译:视频中的面部情感识别是人类和计算机都表现不佳的典型案例。在最近的情感识别竞赛中,最常用的方法是使用最能捕捉面部动态的几何关系或精确的配准技术来开发外观特征。这两种方法捕获两种不同类型的面部信息,类似于人类视觉系统在感知面部时如何划分信息。在本文中,我们提出了一种生物学启发的融合方法来模拟此过程。该方法的有效性已通过“音频/视觉情感挑战2011”数据集进行了测试,这是一个非常重要的数据集,在这种数据集中,最先进的方法很偶然。提议的方法将公开数据的分类率提高了18.5%。

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