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Single view-based 3D face reconstruction robust to self-occlusion

机译:基于单视图的3D人脸重建对自遮蔽具有鲁棒性

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State-of-the-art 3D morphable model (3DMM) is used widely for 3D face reconstruction based on a single image. However, this method has a high computational cost, and hence, a simplified 3D morphable model (S3DMM) was proposed as an alternative. Unlike the original 3DMM, S3DMM uses only a sparse 3D facial shape, and therefore, it incurs a lower computational cost. However, this method is vulnerable to self-occlusion due to head rotation. Therefore, we propose a solution to the self-occlusion problem in S3DMM-based 3D face reconstruction. This research is novel compared with previous works, in the following three respects. First, self-occlusion of the input face is detected automatically by estimating the head pose using a cylindrical head model. Second, a 3D model fitting scheme is designed based on selected visible facial feature points, which facilitates 3D face reconstruction without any effect from self-occlusion. Third, the reconstruction performance is enhanced by using the estimated pose as the initial pose parameter during the 3D model fitting process. The experimental results showed that the self-occlusion detection had high accuracy and our proposed method delivered a noticeable improvement in the 3D face reconstruction performance compared with previous methods.
机译:最新的3D可变形模型(3DMM)被广泛用于基于单个图像的3D人脸重建。但是,这种方法的计算成本很高,因此,提出了一种简化的3D可变形模型(S3DMM)作为替代方案。与原始3DMM不同,S3DMM仅使用稀疏的3D面部形状,因此,其计算成本较低。然而,由于头部旋转,该方法容易自我闭塞。因此,我们提出了基于S3DMM的3D人脸重建中自我遮挡问题的解决方案。与以前的作品相比,这项研究在以下三个方面是新颖的。首先,通过使用圆柱形头部模型估计头部姿势来自动检测输入面部的自遮挡。其次,基于选定的可见面部特征点设计3D模型拟合方案,这有助于3D面部重建,而不会受到自遮挡的影响。第三,通过在3D模型拟合过程中将估计的姿态用作初始姿态参数来增强重建性能。实验结果表明,自遮挡检测具有很高的准确性,与以前的方法相比,我们提出的方法在3D人脸重建性能上有明显的提高。

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