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Low-Barrier Dataset Collection with Real Human Body for Interactive Per-Garment Virtual Try-On

12 June 2025
Zaiqiang Wu
Yechen Li
Jingyuan Liu
Yuki Shibata
Takayuki Hori
I-Chao Shen
Takeo Igarashi
    3DH
ArXiv (abs)PDFHTML
Main:11 Pages
19 Figures
Bibliography:2 Pages
1 Tables
Abstract

Existing image-based virtual try-on methods are often limited to the front view and lack real-time performance. While per-garment virtual try-on methods have tackled these issues by capturing per-garment datasets and training per-garment neural networks, they still encounter practical limitations: (1) the robotic mannequin used to capture per-garment datasets is prohibitively expensive for widespread adoption and fails to accurately replicate natural human body deformation; (2) the synthesized garments often misalign with the human body. To address these challenges, we propose a low-barrier approach for collecting per-garment datasets using real human bodies, eliminating the necessity for a customized robotic mannequin. We also introduce a hybrid person representation that enhances the existing intermediate representation with a simplified DensePose map. This ensures accurate alignment of synthesized garment images with the human body and enables human-garment interaction without the need for customized wearable devices. We performed qualitative and quantitative evaluations against other state-of-the-art image-based virtual try-on methods and conducted ablation studies to demonstrate the superiority of our method regarding image quality and temporal consistency. Finally, our user study results indicated that most participants found our virtual try-on system helpful for making garment purchasing decisions.

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@article{wu2025_2506.10468,
  title={ Low-Barrier Dataset Collection with Real Human Body for Interactive Per-Garment Virtual Try-On },
  author={ Zaiqiang Wu and Yechen Li and Jingyuan Liu and Yuki Shibata and Takayuki Hori and I-Chao Shen and Takeo Igarashi },
  journal={arXiv preprint arXiv:2506.10468},
  year={ 2025 }
}
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