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Intrinsic Face Image Decomposition with Human Face Priors

机译:与人脸部前沿的内在面部图像分解

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We present a method for decomposing a single face photograph into its intrinsic image components. Intrinsic image decomposition has commonly been used to facilitate image editing operations such as relighting and re-texturing. Although current single-image intrinsic image methods are able to obtain an approximate decomposition, image operations involving the human face require greater accuracy since slight errors can lead to visually disturbing results. To improve decomposition for faces, we propose to utilize human face priors as constraints for intrinsic image estimation. These priors include statistics on skin reflectance and facial geometry. We also make use of a physically-based model of skin translucency to heighten accuracy, as well as to further decompose the reflectance image into a diffuse and a specular component. With the use of priors and a skin reflectance model for human faces, our method is able to achieve appreciable improvements in intrinsic image decomposition over more generic techniques.
机译:我们介绍了一种将单个脸部照片分解成其内部图像组件的方法。内在图像分解通常用于促进图像编辑操作,例如致密和重新纹理。尽管目前的单图像内在图像方法能够获得近似分解,但是涉及人脸的图像操作需要更大的精度,因为轻微的误差可能导致视觉扰乱结果。为了改善面对面的分解,我们建议利用人面向子作为内在图像估计的约束。这些前瞻包括皮肤反射率和面部几何的统计数据。我们还利用了基于物理基础的皮肤半透明模型来提高精度,以及进一步将反射图像进一步分解成漫射和镜面部件。随着人体面部的使用前驱和皮肤反射率模型,我们的方法能够在更通用的技术上实现内在图像分解的明显改进。

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