GrabS: Generative Embodied Agent for 3D Object Segmentation without Scene Supervision
Zihui Zhang, Yafei Yang, Hongtao Wen, Bo Yang
摘要
We study the hard problem of 3D object segmentation in complex point clouds without requiring human labels of 3D scenes for supervision. By relying on the similarity of pretrained 2D features or external signals such as motion to group 3D points as objects, existing unsupervised methods are usually limited to identifying simple objects like cars or their segmented objects are often inferior due to the lack of objectness in pretrained features. In this paper, we propose a new twostage pipeline called GrabS. The core concept of our method is to learn generative and discriminative object-centric priors as a foundation from object datasets in the first stage, and then design an embodied agent to learn to discover multiple objects by querying against the pretrained generative priors in the second stage. We extensively evaluate our method on two real-world datasets and a newly created synthetic dataset, demonstrating remarkable segmentation performance, clearly surpassing all existing unsupervised methods.
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引用它的顶会 Paper3
- EvObj: Learning Evolving Object-centric Representations for 3D Instance Segmentation without Scene SupervisionJiahao Chen, Zihui Zhang, Yafei Yang, Jinxi Li 等CVPR 2026 · 被引用 1 次
- FoundObj: Self-supervised Foundation Models as Rewards for Label-free 3D Object SegmentationZihui Zhang, Zhixuan Sun, Yafei YANG, Jinxi Li 等ICML 2026
- 3D-DLP: Self-supervised 3D Object-centric Scene Representation LearningEllina Zhang, Madhavan Iyengar, Amir Zadeh, Chuan Li 等ICML 2026
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