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Probabilistic Approach to Realistic Face Synthesis With a Single Uncalibrated Image

机译:带有单个未校准图像的逼真的人脸合成的概率方法

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This paper presents a novel approach to automatic face modeling for realistic synthesis from an unknown face image, using a probabilistic face diffuse model and a generic face specular map. We construct a probabilistic face diffuse model for estimating the albedo and normals of the input face. Then, we develop a generic face specular map for estimating the specularity of face. Using the estimated albedo, normal, and specular information, we can synthesize the face under arbitrary lighting and viewing directions realistically. Unlike many existing techniques, our approach can extract both the diffuse and specular information of face without involving an intensive 3-D matching procedure. We conduct three different experiments to show our improvement over the prior art. First, we compare the proposed algorithm with previous techniques, including the state of the art, to demonstrate our achievement in realistic face synthesis. Moreover, we evaluate the proposed algorithm over nonautomatic face modeling techniques through a subjective user study. This evaluation is meaningful in that it tells us how far our results as well as others are from the real photograph in terms of the perceptual quality. Finally, we apply our face model for improving the face recognition performance under varying illumination conditions and show that the proposed algorithm is effective in enhancing the face recognition rate. Thanks to the compact representation and the effective inference scheme, our technique is applicable for many practical applications, such as avatar creation, digital face cloning, face normalization, de-identification and many others.
机译:本文介绍了一种新颖的自动面部建模方法,可使用概率面部扩散模型和通用面部镜面贴图从未知面部图像进行逼真的合成。我们构造了一个概率面孔扩散模型,用于估计输入面孔的反照率和法线。然后,我们开发了一个通用的人脸镜面贴图,用于估计人脸的镜面反射率。使用估计的反照率,法线和镜面反射信息,我们可以在任意光照和观看方向下真实地合成人脸。与许多现有技术不同,我们的方法可以提取面部的漫反射和镜面反射信息,而无需进行密集的3D匹配过程。我们进行了三个不同的实验,以显示我们对现有技术的改进。首先,我们将提出的算法与现有技术(包括现有技术)进行比较,以证明我们在逼真的人脸合成中的成就。此外,我们通过主观用户研究评估了提出的算法在非自动人脸建模技术上的应用。这种评估是有意义的,因为它告诉我们我们的结果以及其他结果与真实照片相比在感知质量上有多远。最后,我们将我们的人脸模型应用于改善在不同光照条件下的人脸识别性能,并表明该算法可有效提高人脸识别率。得益于紧凑的表示和有效的推理方案,我们的技术适用于许多实际应用,例如头像创建,数字人脸克隆,人脸归一化,去识别等。

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