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Papers/AttnGAN: Fine-Grained Text to Image Generation with Attent...

AttnGAN: Fine-Grained Text to Image Generation with Attentional Generative Adversarial Networks

Tao Xu, Pengchuan Zhang, Qiuyuan Huang, Han Zhang, Zhe Gan, Xiaolei Huang, Xiaodong He

2017-11-28CVPR 2018 6Text-to-Image GenerationImage-text matchingText MatchingText to Image GenerationImage Generation
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Abstract

In this paper, we propose an Attentional Generative Adversarial Network (AttnGAN) that allows attention-driven, multi-stage refinement for fine-grained text-to-image generation. With a novel attentional generative network, the AttnGAN can synthesize fine-grained details at different subregions of the image by paying attentions to the relevant words in the natural language description. In addition, a deep attentional multimodal similarity model is proposed to compute a fine-grained image-text matching loss for training the generator. The proposed AttnGAN significantly outperforms the previous state of the art, boosting the best reported inception score by 14.14% on the CUB dataset and 170.25% on the more challenging COCO dataset. A detailed analysis is also performed by visualizing the attention layers of the AttnGAN. It for the first time shows that the layered attentional GAN is able to automatically select the condition at the word level for generating different parts of the image.

Results

TaskDatasetMetricValueModel
Image GenerationMS-COCOFID35.49AttnGAN
Image GenerationMS-COCOInception score25.89AttnGAN
Image GenerationMS-COCOSOA-C25.88AttnGAN
Image GenerationCUBInception score4.36AttnGAN
Image GenerationMulti-Modal-CelebA-HQAcc13AttnGAN
Image GenerationMulti-Modal-CelebA-HQFID125.98AttnGAN
Image GenerationMulti-Modal-CelebA-HQLPIPS0.512AttnGAN
Image GenerationMulti-Modal-CelebA-HQReal11.9AttnGAN
Text-to-Image GenerationMS-COCOFID35.49AttnGAN
Text-to-Image GenerationMS-COCOInception score25.89AttnGAN
Text-to-Image GenerationMS-COCOSOA-C25.88AttnGAN
Text-to-Image GenerationCUBInception score4.36AttnGAN
Text-to-Image GenerationMulti-Modal-CelebA-HQAcc13AttnGAN
Text-to-Image GenerationMulti-Modal-CelebA-HQFID125.98AttnGAN
Text-to-Image GenerationMulti-Modal-CelebA-HQLPIPS0.512AttnGAN
Text-to-Image GenerationMulti-Modal-CelebA-HQReal11.9AttnGAN
10-shot image generationMS-COCOFID35.49AttnGAN
10-shot image generationMS-COCOInception score25.89AttnGAN
10-shot image generationMS-COCOSOA-C25.88AttnGAN
10-shot image generationMulti-Modal-CelebA-HQAcc13AttnGAN
10-shot image generationMulti-Modal-CelebA-HQFID125.98AttnGAN
10-shot image generationMulti-Modal-CelebA-HQLPIPS0.512AttnGAN
10-shot image generationMulti-Modal-CelebA-HQReal11.9AttnGAN
10-shot image generationCUBInception score4.36AttnGAN
1 Image, 2*2 StitchiMS-COCOFID35.49AttnGAN
1 Image, 2*2 StitchiMS-COCOInception score25.89AttnGAN
1 Image, 2*2 StitchiMS-COCOSOA-C25.88AttnGAN
1 Image, 2*2 StitchiMulti-Modal-CelebA-HQAcc13AttnGAN
1 Image, 2*2 StitchiMulti-Modal-CelebA-HQFID125.98AttnGAN
1 Image, 2*2 StitchiMulti-Modal-CelebA-HQLPIPS0.512AttnGAN
1 Image, 2*2 StitchiMulti-Modal-CelebA-HQReal11.9AttnGAN
1 Image, 2*2 StitchiCUBInception score4.36AttnGAN

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