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Age and gender-based human face reconstruction from single frontal image

机译:从单个正面图像的年龄和基于性别的人脸重建

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摘要

We present an approach for the human face reconstruction from a single frontal image for the use in forensic anthropology when the subject's age and gender is known. In our approach we build a database of several depth images per each age and gender group pair, marked with facial landmarks. To reconstruct a 3D facial model from an unknown frontal image we search the most similar face in the depth database based on the automatically detected landmarks and assign its depth to the model. In the evaluation part, we compared our approach to a recent automatic convolutional neural network based algorithm and a semi-automatic approach, where landmarks are required to be detected manually. In contrast to other tested approaches our algorithm can estimate all major components, such as eyes, nose and mouth, evenly. Thanks to the external depth database, it can also reconstruct human faces from images with partial facial occlusions and uneven lighting. Additionally, we have found that a single depth image provides a good approximation of the human face and a combination of multiple precomputed depth images has a little impact on the final 3D face reconstruction result. Speed measurements show that our algorithm provides a quick and a fully automatic way to reconstruct a human face from a single frontal image for the use in forensic anthropology.
机译:我们在已知受试者的年龄和性别时,我们提出了一种从单个正面图像中的人脸重建,以便在法医人类学中使用。在我们的方法中,我们每个年龄和性别组对构建一个多个深度图像的数据库,标有面部地标。从未知的正面图像重建3D面部模型,我们根据自动检测到的地标在深度数据库中搜索最相似的面部,并将其深度分配给模型。在评估部分中,我们将我们的方法与最近的自动卷积神经网络的算法和半自动方法进行了比较,其中需要手动检测地标。与其他测试方法相比,我们的算法可以估计所有主要组件,例如眼睛,鼻子和嘴巴。由于外部深度数据库,它还可以从具有部分面部闭合和不均匀照明的图像重建人脸。另外,我们发现单个深度图像提供人面的良好近似,并且多个预先计算的深度图像的组合对最终的3D面部重建结果有很小影响。速度测量表明,我们的算法提供了一种快速和全自动的方式,可以从单个正面图像重建人类,以用于法医人类学。

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