A Cascaded Framework For Model-Based 3D Face Reconstruction
Wang, Pengrui1,2; Che, Wujun1; Xu, Bo1
2018-04
会议日期2018-04
会议地点Calgary, Canada
关键词Model-based 3D face reconstruction face alignment cascaded regression supervised descent method
英文摘要

This paper presents a general framework for model-based 3D face reconstruction from a single image, which can incorporate mature face alignment methods and utilize their properties. In the proposed framework, the final model parameters, i.e., mostly including pose, identity and expression, are achieved by estimating updating the face landmarks and 3D face model parameter alternately. In addition, we propose the parameter augmented regression method (PARM) as an novel derivation of the framework. Compared with existing methods, PARM is able to utilize mature face alignment methods and use fairly simple features in addition to image appearances for the reconstruction task. Experiments on three derivation methods of the framework show that the proposed framework is feasible and PARM is quite an effective and fast method. With face alignment method LBF, PARM can run over 90 fps on a desktop.

语种英语
内容类型会议论文
源URL[http://ir.ia.ac.cn/handle/173211/40395]  
专题数字内容技术与服务研究中心_听觉模型与认知计算
通讯作者Che, Wujun
作者单位1.Institute of Automation, Chinese Academy of Sciences
2.University of Chinese Academy of Sciences
推荐引用方式
GB/T 7714
Wang, Pengrui,Che, Wujun,Xu, Bo. A Cascaded Framework For Model-Based 3D Face Reconstruction[C]. 见:. Calgary, Canada. 2018-04.
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