使用张量框架进行面部动力学分析

Lisa Gralewski, N. Campbell, I. Penton-Voak
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引用次数: 63

摘要

研究表明,面部运动的动态对性别、身份和情感的感知很重要。在本文中,我们表明可以使用多线性张量框架来提取面部运动特征,并根据性别或情感对这些特征进行聚类。在这里,我们只考虑面部内部特征(如眉毛、眼睑和嘴巴)的动态,从而消除了结构和形状对身份和性别的暗示。这种结构性的性别偏见包括下巴宽度和前额形状,消除它们可以确保只使用动态线索。此外,我们展示了使用张量框架的生成能力,通过一致地合成新的运动签名
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Using a tensor framework for the analysis of facial dynamics
Research has shown that the dynamics of facial motion are important in the perception of gender, identity, and emotion. In this paper we show that it is possible to use a multilinear tensor framework to extract facial motion signatures and to cluster these signatures by gender or by emotion. Here we consider only the dynamics of internal features of the face (e.g. eyebrows, eyelids and mouth) so as to remove structural and shape cues to identity and gender. Such structural gender biases include jaw width and forehead shape and their removal ensures dynamic cues alone are being used. Additionally, we demonstrate the generative capabilities of using a tensor framework, by consistently synthesising new motion signatures
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