Joint 3D facial shape reconstruction and texture completion from a single image

被引:1
|
作者
Xiaoxing Zeng [1 ,2 ]
Zhelun Wu [1 ]
Xiaojiang Peng [1 ]
Yu Qiao [1 ]
机构
[1] Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences
[2] University of Chinese Academy of Sciences
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TP391.41 [];
学科分类号
080203 ;
摘要
Recent years have witnessed significant progress in image-based 3D face reconstruction using deep convolutional neural networks. However, current reconstruction methods often perform improperly in self-occluded regions and can lead to inaccurate correspondences between a 2D input image and a3D face template, hindering use in real applications.To address these problems, we propose a deep shape reconstruction and texture completion network, SRTCNet, which jointly reconstructs 3D facial geometry and completes texture with correspondences from a single input face image. In SRTC-Net, we leverage the geometric cues from completed 3D texture to reconstruct detailed structures of 3D shapes. The SRTC-Net pipeline has three stages.The first introduces a correspondence network to identify pixelwise correspondence between the input 2D image and a 3D template model, and transfers the input 2D image to a U-V texture map. Then we complete the invisible and occluded areas in the U-V texture map using an inpainting network. To get the 3D facial geometries,we predict coarse shape(U-V position maps) from the segmented face from the correspondence network using a shape network, and then refine the 3D coarse shape by regressing the U-V displacement map from the completed U-V texture map in a pixel-to-pixel way. We examine our methods on 3D reconstruction tasks as well as face frontalization and pose invariant face recognition tasks, using both in-the-lab datasets(MICC, MultiPIE) and in-the-wild datasets(CFP). The qualitative and quantitative results demonstrate the effectiveness of our methods on inferring 3D facial geometry and complete texture; they outperform or are comparable to the state-of-the-art.
引用
收藏
页码:239 / 256
页数:18
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