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CVPR2023顶会

PartManip: Learning Cross-Category Generalizable Part Manipulation Policy from Point Cloud Observations

Haoran Geng, Ziming Li, Yiran Geng, Jiayi Chen, Hao Dong, He Wang

2023年份
15顶会引用

摘要

based expert with our proposed part-based canonicalization and part-aware rewards, and then distill the knowledge to a vision-based student. We also find an expressive backbone is essential to overcome the large diversity of different objects. For cross-category generalization, we introduce domain adversarial learning for domain-invariant feature extraction. Extensive experiments in simulation show that our learned policy can outperform other methods by a large margin, especially on unseen object categories. We also demonstrate our method can successfully manipulate novel objects in the real world. Our benchmark has been released in https://pku-epic.github.io/PartManip.

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