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Face image synthesis with weight and age progression using conditional adversarial autoencoder

机译:使用有条件对抗AutoEncoder的体重和年龄进展的面部图像合成

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摘要

The appearance of a human face changes with the change in body weight and age. With varying lifestyle choices, it is hard to imagine the appearance of a given human face in years to come. Future self-perception is highly associated with one's emotional state, as well as health behavior. Negative future self-perception can cause negative lifestyle choice and negative health behavior, leading to depression and eating disorder. In this paper, a new methodology is introduced for future self-face image synthesis using age and weight, resulting in visualization of future face image derived from given weight category and age. A Constrained Local Model is first used for weight progressed future face image synthesized and then age-progressed future face image is generated using Conditional Adversarial Auto Encoder. In the final step, both weight progressed and age-progressed face images fed to face morphing module which synthesized future face image by keeping natural looks. Experimental results show the advantages of proposed method with promising results.
机译:人类脸的外观随着体重和年龄的变化而变化。随着生活方式选择的不同,很难想象多年来一直存在赋予人类脸的外观。未来的自我感知与一个人的情绪状态以及健康行为高度相关。消极的未来自我认知会导致负面生活方式选择和负面健康行为,导致抑郁和饮食失调。在本文中,引入了使用年龄和重量的未来自脸图像合成的新方法,导致从给定权重类和年龄导出的未来面部图像的可视化。第一个限制的本地模型首先用于重量进展的未来面部图像合成,然后使用条件对抗自动编码器生成年龄进展的未来面部图像。在最后的步骤中,重量的进展和年龄逐步的面部图像进料到面对变形模块,通过保持自然外观来合成未来面部图像。实验结果表明了提出的方法具有前景的方法。

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