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GANmera: Reproducing Aesthetically Pleasing Photographs Using Deep Adversarial Networks

机译:Ganmera:使用深层对抗网络再现美学上令人愉悦的照片

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Generative adversarial networks (GANs) have become increasingly popular in recent years owing to its ability to synthesize and transfer. The image enhancement task can also be modeled as an image-to-image translation problem. In this paper, we propose GANmera, a deep adversarial network which is capable of performing aesthetically-driven enhancement of photographs. The network adopts a 2-way GAN architecture and is semi-supervised with aesthetic-based binary labels (good and bad). The network is trained with unpaired image sets, hence eliminating the need for strongly supervised before-after pairs. Using CycleGAN as the base architecture, several fine-grained modifications are made to the loss functions, activation functions and resizing schemes, to achieve improved stability in the generator. Two training strategies are devised to produce results with varying aesthetic output. Quantitative evaluation on the recent benchmark MIT-Adobe-5K dataset demonstrate the capability of our method in achieving state-of-the-art PSNR results. We also show qualitatively that the proposed approach produces aesthetically-pleasing images. This work is a shortlisted submission to the CVPR 2019 NTIRE Image Enhancement Challenge.
机译:由于其合成和转移能力,近年来,生成的对抗网络(GANS)越来越受欢迎。图像增强任务也可以被建模为图像到图像到图像转换问题。在本文中,我们提出了一种能够进行美观驱动的照片的深层对抗网络的GANMERA。该网络采用双向GAN架构,并使用基于美学的二进制标签(好和坏)半监督。该网络接受了未配对图像集的培训,因此消除了在成对前一对之前强烈监督的需求。使用Cypergan作为基础架构,对丢失功能,激活功能和调整方案进行了几种细粒度修改,以实现发电机中的稳定性。设计了两种培训策略,以产生不同审美产出的结果。最近的基准MIT-Adobe-5K数据集的定量评估展示了我们在实现最先进的PSNR结果方面的能力。我们还规范表明,该方法产生了美观的图像。这项工作是对CVPR 2019 NTIRE图像增强挑战的遗行提交。

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