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Conditional adversarial consistent identity autoencoder for cross-age face synthesis

机译:有条件的对抗一致的同一性自身互换器,用于串龄面合成

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摘要

Learning-based face aging/rejuvenation has witnessed rapid progress in recent years. However, existing methods still suffer from the loss of personalized identity information when synthesizing cross-age faces. In this paper, we propose a Conditional Adversarial Consistent Identity AutoEncoder (CACIAE) to revisit this problem. Firstly, a Res-Encoder is designed to better generate powerful face representation. Secondly, the rectangular kernel is introduced into the encoder to make full use of horizontal continuous characteristic information of faces and to make the synthetic face images more natural. Thirdly, a novel consistent identity loss is proposed to learn more face details and produce more natural identity-preserving images. Further, two discriminators are designed to enforce the generator to generate more realistic and more age-accurate images. Experimental results prove the effectiveness of the proposed method, both qualitatively and quantitatively. The code is available at https://github.com/XH-B/CACIAE.
机译:近年来,基于学习的面部老化/复兴表现出快速进展。然而,在合成跨年面时,现有方法仍然遭受个性化身份信息的损失。在本文中,我们提出了一种有条件的对抗性一致的身份自动化(Caciae)来重新审视这个问题。首先,res-encoder旨在更好地产生强大的面部表示。其次,将矩形内核引入编码器中以充分利用面部的水平连续特征信息,并使合成面图像更加自然。第三,提出了一种新的一致性损失,以了解更多面部细节并产生更多的自然身份保存图像。此外,两个鉴别器旨在强制执行发电机以产生更现实和更严格的图像。实验结果证明了质量和定量的提出方法的有效性。该代码可在https://github.com/xh-b/caciae获得。

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