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Principal component analysis for surface reflection components and structure in the facial image and synthesis of the facial image in various ages

机译:面部图像表面反射组件和结构的主成分分析及各个年龄面部图像的合成

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In this paper, principal component analysis is applied to pigmentation distributions, surface reflectance components and facial landmarks in the whole facial images to obtain feature values. Furthermore, the relationship between the obtained feature vectors and age is estimated by multiple regression analysis to modulate facial images in woman of ages 10 to 70. In our previous work, we analyzed only pigmentation distributions and the reproduced images looked younger than the reproduced age by the subjective evaluation. We considered that this happened because we did not modulate the facial structures and detailed surfaces such as wrinkles. By analyzing landmarks represented facial structures and surface reflectance components, we analyzed the variation of facial structures and fine asperity distributions as well as pigmentation distributions in the whole face. As a result, our method modulate the appearance of a face by changing age more appropriately.
机译:在本文中,主要成分分析应用于整个面部图像中的色素沉着分布,表面反射组件和面部地标以获得特征值。此外,所获得的特征向量和年龄之间的关系是通过多元回归分析来估算,以调制10到70岁的女性的面部图像。在我们以前的工作中,我们仅分析了色素沉着的分布,转载的图像看起来比再现年龄更年轻主观评估。我们认为这发生了这种情况,因为我们没有调制面部结构和诸如皱纹的细节表面。通过分析地标代表面部结构和表面反射率分量,我们分析了整个面部结构和细小粗糙分布的变化以及整个面部的色素沉着分布。结果,我们的方法通过更改的年龄更适当地调节面部的外观。

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