Papers › Improving Diffusion Models for Authentic Virtual Try-on in the Wild

Improving Diffusion Models for Authentic Virtual Try-on in the Wild

8 Mar 2024arXiv:2403.05139archive 2025-07-28

Yisol Choi, Sangkyung Kwak, Kyungmin Lee, Hyungwon Choi, Jinwoo Shin

This paper considers image-based virtual try-on, which renders an image of a person wearing a curated garment, given a pair of images depicting the person and the garment, respectively. Previous works adapt existing exemplar-based inpainting diffusion models for virtual try-on to improve the naturalness of the generated visuals compared to other methods (e.g., GAN-based), but they fail to preserve the identity of the garments. To overcome this limitation, we propose a novel diffusion model that improves garment fidelity and generates authentic virtual try-on images. Our method, coined IDM-VTON, uses two different modules to encode the semantics of garment image; given the base UNet of the diffusion model, 1) the high-level semantics extracted from a visual encoder are fused to the cross-attention layer, and then 2) the low-level features extracted from parallel UNet are fused to the self-attention layer. In addition, we provide detailed textual prompts for both garment and person images to enhance the authenticity of the generated visuals. Finally, we present a customization method using a pair of person-garment images, which significantly improves fidelity and authenticity. Our experimental results show that our method outperforms previous approaches (both diffusion-based and GAN-based) in preserving garment details and generating authentic virtual try-on images, both qualitatively and quantitatively. Furthermore, the proposed customization method demonstrates its effectiveness in a real-world scenario. More visualizations are available in our project page: https://idm-vton.github.io

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mask_pil_to_torch yisol/IDM-VTON/src/tryon_pipeline.py official repository ran licence not identified · pointer only · cee8fc91e868c8f9 · report
rescale_noise_cfg yisol/IDM-VTON/src/tryon_pipeline.py official repository ran · our draft was wrong fingerprinted no licence file found · pointer only · bea2d776a332f2b0 · report
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register_action yisol/IDM-VTON/gradio_demo/apply_net.py official repository unverified licence not identified · pointer only · d952d20e01c93669 · report
zero_module yisol/IDM-VTON/src/unet_hacked_garmnet.py official repository unverified no licence file found · pointer only · d81381b327c76edd · report

Tasks

Virtual Try-on

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Virtual Try-on VITON-HD IDM-VTON FID 6.290 #2 of 5 Archive leaderboard report

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Methods

BASEDiffusionInpainting

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