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Recursive Chaining of Reversible Image-to-image Translators for Face Aging

机译:用于面部老化的可逆图像到图像转换器的递归链接

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This paper addresses the modeling and simulation of progressive changes over time, such as human face aging. By treating the age phases as a sequence of image domains, we construct a chain of transformers that map images from one age domain to the next. Leveraging recent adversarial image translation methods, our approach requires no training samples of the same individual at different ages. Here, the model must be flexible enough to translate a child face to a young adult, and all the way through the adulthood to old age. We find that some transformers in the chain can be recursively applied on their own output to cover multiple phases, compressing the chain. The structure of the chain also unearths information about the underlying physical process. We demonstrate the performance of our method with precise and intuitive metrics, and visually match with the face aging state-of-the-art.
机译:本文介绍了随着时间的推移不断变化的建模和仿真,例如人脸老化。通过将年龄阶段视为一系列图像域,我们构建了一系列转换器,将一个年龄域的图像映射到下一个年龄域。利用最新的对抗性图像翻译方法,我们的方法不需要训练不同年龄的同一个人的样本。在此,该模型必须足够灵活,以将儿童面部转换为年轻成年人,并从成年到老年。我们发现,链中的某些变压器可以递归地应用于其自身的输出以覆盖多个阶段,从而压缩链。链的结构还发掘了有关基础物理过程的信息。我们以精确,直观的指标展示了我们方法的性能,并在视觉上与最新的面部老化技术相匹配。

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