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Robust facial feature tracking under varying face pose and facial expression

机译:在变化的面部姿势和面部表情下进行稳健的面部特征跟踪

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摘要

This paper presents a hierarchical multi-state pose-dependent approach for facial feature detection and tracking under varying facial expression and face pose. For effective and efficient representation of feature points, a hybrid representation that integrates Gabor wavelets and gray-level profiles is proposed. To model the spatial relations among feature points. a hierarchical statistical face shape model is proposed to characterize both the global shape of human face and the local structural details of each facial component. Furthermore, multi-state local shape models are introduced to deal with shape variations of some facial components under different facial expressions. During detection and tracking, both facial component states and feature point positions, constrained by the hierarchical face shape model, are dynamically estimated using a switching hypothesized measurements (SHM) model. Experimental results demonstrate that the proposed method accurately and robustly tracks facial features in real time under different facial expressions and face poses. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于多状态姿势的分层方法,用于在变化的面部表情和面部姿势下进行面部特征检测和跟踪。为了有效且高效地表示特征点,提出了一种融合Gabor小波和灰度轮廓的混合表示。模拟特征点之间的空间关系。提出了一种分层的统计面部形状模型,以表征人脸的整体形状和每个面部组件的局部结构细节。此外,引入了多状态局部形状模型来处理不同面部表情下某些面部成分的形状变化。在检测和跟踪过程中,使用切换假设测量(SHM)模型动态估算受分层面部形状模型约束的面部组件状态和特征点位置。实验结果表明,该方法可以准确,鲁棒地实时跟踪不同表情和面部姿势下的面部特征。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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