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Tracking facial features with occlusions 被引量:3

Tracking facial features with occlusions
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摘要 Facial expression recognition consists of determining what kind of emotional content is presented in a human face. The problem presents a complex area for exploration, since it encompasses face acquisition, facial feature tracking, facial ex- pression classification. Facial feature tracking is of the most interest. Active Appearance Model (AAM) enables accurate tracking of facial features in real-time, but lacks occlusions and self-occlusions. In this paper we propose a solution to improve the accuracy of fitting technique. The idea is to include occluded images into AAM training data. We demonstrate the results by running ex- periments using gradient descent algorithm for fitting the AAM. Our experiments show that using fitting algorithm with occluded training data improves the fitting quality of the algorithm. Facial expression recognition consists of determining what kind of emotional content is presented in a human face. The problem presents a complex area for exploration, since it encompasses face acquisition, facial feature tracking, facial expression classification. Facial feature tracking is of the most interest. Active Appearance Model (AAM) enables accurate tracking of facial features in real-time, but lacks occlusions and self-occlusions. In this paper we propose a solution to improve the accuracy of fitting technique. The idea is to include occluded images into AAM training data. We demonstrate the results by running experiments using gradient descent algorithm for fitting the AAM. Our experiments show that using fitting algorithm with occluded training data improves the fitting quality of the algorithm.
出处 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2006年第7期1282-1288,共7页 浙江大学学报(英文版)A辑(应用物理与工程)
关键词 Active Appearance Model (AAM) Facial feature tracking Computer vision AAM 面部特征跟踪 计算机视觉 情绪 封闭
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参考文献2

  • 1I-Chen Lin,Ming Ouhyoung.Mirror MoCap: Automatic and efficient capture of dense 3D facial motion parameters from video[J].The Visual Computer.2005(6)
  • 2Iain Matthews,Simon Baker.Active Appearance Models Revisited[J].International Journal of Computer Vision.2004(2)

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