Part123: Part-aware 3D Reconstruction from a Single-view Image
Anran Liu, Cheng Lin, Yuan Liu, Xiaoxiao Long, Zhiyang Dou, Hao-Xiang Guo, Ping Luo, Wenping Wang
Abstract
Recently, the emergence of diffusion models has opened up new opportunities for single-view reconstruction. However, all the existing methods represent the target object as a closed mesh devoid of any structural information, thus neglecting the part-based structure, which is crucial for many downstream applications, of the reconstructed shape. Moreover, the generated meshes usually suffer from large noises, unsmooth surfaces, and blurry textures, making it challenging to obtain satisfactory part segments using 3D segmentation techniques. In this paper, we present Part123, a novel framework for part-aware 3D reconstruction from a single-view image. We first use diffusion models to generate multiview-consistent images from a given image, and then leverage Segment Anything Model (SAM), which demonstrates powerful generalization ability on arbitrary objects, to generate multiview segmentation masks. To effectively incorporate 2D part-based information into 3D reconstruction and handle inconsistency, we introduce contrastive learning into a neural rendering framework to learn a part-aware feature space based on the multiview segmentation masks. A clustering-based algorithm is also developed to automatically derive 3D part segmentation results from the reconstructed models. Experiments show that our method can generate 3D models with high-quality segmented parts on various objects. Compared to existing unstructured reconstruction methods, the part-aware 3D models from our method benefit some important applications, including feature-preserving reconstruction, primitive fitting, and 3D shape editing.
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Install the CLIlune papers fulltext 02a64ad0-fa37-4eb1-a5d6-d36756a51a3cCited by top-tier papers19
- PartField: Learning 3D Feature Fields for Part Segmentation and BeyondMing-Yu Liu, Mikaela Angelina Uy, Donglai Xiang, Hao Su et al.ICCV 2025 · 103 citations
- PartCrafter: Structured 3D Mesh Generation via Compositional Latent Diffusion TransformersYuchen Lin, Chenguo Lin, Panwang Pan, Honglei Yan et al.NeurIPS 2025 · 89 citations
- HoloPart: Generative 3D Part Amodal SegmentationYunhan Yang, Yuanchen Guo, Yukun Huang, Zi-Xin Zou et al.ICLR 2026 · 62 citations
- MeshCoder: LLM-Powered Structured Mesh Code Generation from Point CloudsBingquan Dai, Li Ray Luo, Qihong Tang, Jie Wang et al.NeurIPS 2025 · 19 citations
- FullPart: Generating each 3D Part at Full ResolutionLihe Ding, Shaocong Dong, Yaokun Li, Chenjian Gao et al.ICLR 2026 · 17 citations
Builds on37
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Denoising Diffusion Probabilistic ModelsJonathan Ho, Ajay Jain, Pieter AbbeelNeurIPS 2020 · 35,902 citations
- Segment AnythingAlexander Kirillov, Eric Mintun, Nikhila Ravi, Hanzi Mao et al.ICCV 2023 · 13,211 citations
- NeuS: Learning Neural Implicit Surfaces by Volume Rendering for Multi-view ReconstructionPeng Wang, Lingjie Liu, Yuan Liu, Christian Theobalt et al.NeurIPS 2021 · 2,500 citations
- One-2-3-45: Any Single Image to 3D Mesh in 45 Seconds without Per-Shape OptimizationMinghua Liu, Chao Xu, Haian Jin, Linghao Chen et al.NeurIPS 2023 · 755 citations
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