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Pose invariant affect analysis using thin-plate splines

机译:使用薄板样条线进行姿势不变性影响分析

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This paper introduces a method for pose-invariant facial affect analysis and a real-time system for facial affect analysis using this method. The method is centered on developing a feature vector that is more robust to rigid body movements while retaining information important to facial affect analysis. This feature vector is produced using thin-plate splines to extract affine transformations independently from nonlinear transformations quickly and efficiently. The affine portion can be used to describe the rigid body motion because planar motions in a perspective projection can be approximated by an affine transformation. Removing the affine portion and using the nonlinear portion of the thin-plate spline warping provides information on the nonlinear motion caused by facial affects. The real-time system developed using this method is composed of three main components: facial landmark tracking, feature vector extraction, and affect classification. The system processes streaming video in real-time. Testing was performed to examine the invariance to rotation as well as subject independence of the system. Finally, its application in real-world environments is discussed.
机译:本文介绍了一种姿势不变的面部表情分析方法,以及一种使用该方法进行面部表情分析的实时系统。该方法的重点是开发一个特征向量,该特征向量对刚体的移动更为稳健,同时保留了对面部情感分析至关重要的信息。该特征向量是使用薄板样条生成的,可快速有效地提取仿射变换,而与非线性变换无关。仿射部分可以用来描述刚体的运动,因为透视投影中的平面运动可以通过仿射变换来近似。删除仿射部分并使用薄板样条翘曲的非线性部分可提供有关由面部影响引起的非线性运动的信息。使用此方法开发的实时系统由三个主要组件组成:面部界标跟踪,特征向量提取和情感分类。系统实时处理流视频。进行测试以检查旋转的不变性以及系统的主体独立性。最后,讨论了其在现实环境中的应用。

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