xCloth: Extracting Template-free Textured 3D Clothes from a Monocular Image
Astitva Srivastava, Chandradeep Pokhariya, Sai Sagar Jinka, Avinash Sharma
Abstract
Existing approaches for 3D garment reconstruction either assume a predefined template for the garment geometry (restricting them to fixed clothing styles) or yield vertex-colored meshes (lacking high-frequency textural details). Our novel framework co-learns geometric and semantic information of garment surface from the input monocular image for template-free textured 3D garment digitization. More specifically, we propose to extend PeeledHuman representation to predict the pixel-aligned, layered depth and semantic maps to extract 3D garments. The layered representation is further exploited to UV parametrize the arbitrary surface of the extracted garment without any human intervention to form a UV atlas. The texture is then imparted on the UV atlas in a hybrid fashion by first projecting pixels from the input image to UV space for the visible region, followed by inpainting the occluded regions. Thus, we are able to digitize arbitrarily loose clothing styles while retaining high-frequency textural details from a monocular image. We achieve high-fidelity 3D garment reconstruction results on three publicly available datasets and generalization on internet images.
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Install the CLIlune papers fulltext 6d98803a-cfc5-4091-9527-ce2dc712e949Cited by top-tier papers3
- Single View Garment Reconstruction Using Diffusion Mapping Via Pattern CoordinatesRen Li, Cong Cao, Corentin Dumery, Yingxuan You et al.SIGGRAPH 2025 · 5 citations
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Builds on6
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- Continuous Surface EmbeddingsNatalia Neverova, David Novotný, Marc Szafraniec, Vasil Khalidov et al.NeurIPS 2020 · 116 citations
- Registering Explicit to Implicit: Towards High-Fidelity Garment mesh Reconstruction from Single ImagesHeming Zhu, Lingteng Qiu, Yuda Qiu, Xiaoguang HanCVPR 2022 · 32 citations
- Function4D: Real-Time Human Volumetric Capture From Very Sparse Consumer RGBD SensorsTao Yu, Zerong Zheng, Kaiwen Guo, Pengpeng Liu et al.CVPR 2021
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