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Photorealistic Facial Texture Inference Using Deep Neural Networks

机译:使用深度神经网络的真实感面部纹理推断

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We present a data-driven inference method that can synthesize a photorealistic texture map of a complete 3D face model given a partial 2D view of a person in the wild. After an initial estimation of shape and low-frequency albedo, we compute a high-frequency partial texture map, without the shading component, of the visible face area. To extract the fine appearance details from this incomplete input, we introduce a multi-scale detail analysis technique based on mid-layer feature correlations extracted from a deep convolutional neural network. We demonstrate that fitting a convex combination of feature correlations from a high-resolution face database can yield a semantically plausible facial detail description of the entire face. A complete and photorealistic texture map can then be synthesized by iteratively optimizing for the reconstructed feature correlations. Using these high-resolution textures and a commercial rendering framework, we can produce high-fidelity 3D renderings that are visually comparable to those obtained with state-of-the-art multi-view face capture systems. We demonstrate successful face reconstructions from a wide range of low resolution input images, including those of historical figures. In addition to extensive evaluations, we validate the realism of our results using a crowdsourced user study.
机译:我们提出了一种数据驱动的推理方法,该方法可以在给定野外人物的部分2D视图的情况下,合成完整3D人脸模型的逼真的纹理图。在初步估计形状和低频反照率之后,我们计算了可见面部区域的高频部分纹理贴图,没有阴影分量。为了从不完整的输入中提取出精美的外观细节,我们引入了一种多尺度的细节分析技术,该技术基于从深度卷积神经网络中提取的中间层特征相关性。我们证明,从高分辨率的面部数据库中拟合特征相关性的凸组合可以产生整个面部的语义上合理的面部细节描述。然后可以通过迭代优化重建的特征相关性来合成完整且逼真的纹理图。使用这些高分辨率纹理和商业渲染框架,我们可以生成高逼真的3D渲染,这些渲染在视觉上可与使用最新的多视图面部捕获系统获得的渲染媲美。我们演示了从各种低分辨率输入图像(包括历史人物)获得的成功面部重建。除了进行广泛的评估之外,我们还使用众包用户研究来验证结果的真实性。

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