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Texture-independent recognition of facial expressions in image snapshots and videos

机译:图像快照和视频中面部表情的纹理无关识别

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摘要

This paper addresses the static and dynamic recognition of basic facial expressions. It has two main contributions. First, we introduce a view- and texture-independent scheme that exploits facial action parameters estimated by an appearance-based 3D face tracker. We represent the learned facial actions associated with different facial expressions by time series. Second, we compare this dynamic scheme with a static one based on analyzing individual snapshots and show that the former performs better than the latter. We provide evaluations of performance using three subspace learning techniques: linear discriminant analysis, non-parametric discriminant analysis and support vector machines.
机译:本文介绍了基本面部表情的静态和动态识别。它有两个主要贡献。首先,我们介绍一种独立于视图和纹理的方案,该方案利用了基于外观的3D面部跟踪器估算的面部动作参数。我们通过时间序列表示与不同面部表情相关的学习到的面部动作。其次,我们在分析单个快照的基础上将这种动态方案与静态方案进行了比较,结果表明前者的性能优于后者。我们使用三种子空间学习技术提供性能评估:线性判别分析,非参数判别分析和支持向量机。

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