Papers › XingGAN for Person Image Generation

XingGAN for Person Image Generation

17 Jul 2020ECCV 2020 8arXiv:2007.09278archive 2025-07-28

Hao Tang, Song Bai, Li Zhang, Philip H. S. Torr, Nicu Sebe

We propose a novel Generative Adversarial Network (XingGAN or CrossingGAN) for person image generation tasks, i.e., translating the pose of a given person to a desired one. The proposed Xing generator consists of two generation branches that model the person's appearance and shape information, respectively. Moreover, we propose two novel blocks to effectively transfer and update the person's shape and appearance embeddings in a crossing way to mutually improve each other, which has not been considered by any other existing GAN-based image generation work. Extensive experiments on two challenging datasets, i.e., Market-1501 and DeepFashion, demonstrate that the proposed XingGAN advances the state-of-the-art performance both in terms of objective quantitative scores and subjective visual realness. The source code and trained models are available at https://github.com/Ha0Tang/XingGAN.

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Code

Ha0Tang/XingGAN officialmentioned in papermentioned on GitHubpytorchNOASSERTION report
Ha0Tang/XingVTON mentioned on GitHubpytorchNOASSERTION report

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Tasks

Image GenerationPose Transfer

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Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Pose Transfer Deep-Fashion XingGAN IS 3.476 #2 of 12 Archive leaderboard report
Pose Transfer Deep-Fashion XingGAN PCKh 0.95 #2 of 12 Archive leaderboard report
Pose Transfer Deep-Fashion XingGAN SSIM 0.778 #2 of 12 Archive leaderboard report
Pose Transfer Market-1501 XingGAN IS 3.506 #2 of 3 Archive leaderboard report
Pose Transfer Market-1501 XingGAN PCKh 0.93 #2 of 3 Archive leaderboard report
Pose Transfer Market-1501 XingGAN SSIM 0.313 #2 of 3 Archive leaderboard report
Pose Transfer Market-1501 XingGAN mask-IS 3.872 #2 of 3 Archive leaderboard report
Pose Transfer Market-1501 XingGAN mask-SSIM 0.816 #2 of 3 Archive leaderboard report

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