TY - GEN
T1 - Towards Extrinsic Dexterity Grasping in Unrestricted Environments
AU - Ma, Chengzhong
AU - Yang, Houxue
AU - Zhang, Hanbo
AU - Liu, Zeyang
AU - Zhao, Chao
AU - Tang, Jian
AU - Lan, Xuguang
AU - Zheng, Nanning
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Grasping large and flat objects (e.g., a book or a pan) is often regarded as an ungraspable task, which poses significant challenges due to the unreachable grasping poses. Prior research has exploited environmental interactions through Extrinsic Dexterity, utilizing external structures such as walls or table edges to facilitate object grasping. However, they are confined to task-specific policies while neglecting semantic perception and planning to identify optimal pre-grasp configurations. This limits their operational versatility, impeding effective adaptation to varied extrinsic dexterity constraints. In this work, we present ExDiff, a robot manipulation approach for extrinsic dexterity grasping in unrestricted environments. It utilizes Vision-Language Models (VLMs) to perceive the environmental state and generate instructions, followed by a Goal-Conditioned Action Diffusion (GCAD) model to predict the sequence of low-level actions. This diffusion model learns the low-level policy, conditioned on high-level instructions and cumulative rewards, which improves the generation of robot actions. Simulation experiments and real-world deployment results demonstrate that ExDiff effectively performs ungraspable tasks and generalizes to previously unseen target objects and scenes. Videos at - https://exdiff.github.io/index.html
AB - Grasping large and flat objects (e.g., a book or a pan) is often regarded as an ungraspable task, which poses significant challenges due to the unreachable grasping poses. Prior research has exploited environmental interactions through Extrinsic Dexterity, utilizing external structures such as walls or table edges to facilitate object grasping. However, they are confined to task-specific policies while neglecting semantic perception and planning to identify optimal pre-grasp configurations. This limits their operational versatility, impeding effective adaptation to varied extrinsic dexterity constraints. In this work, we present ExDiff, a robot manipulation approach for extrinsic dexterity grasping in unrestricted environments. It utilizes Vision-Language Models (VLMs) to perceive the environmental state and generate instructions, followed by a Goal-Conditioned Action Diffusion (GCAD) model to predict the sequence of low-level actions. This diffusion model learns the low-level policy, conditioned on high-level instructions and cumulative rewards, which improves the generation of robot actions. Simulation experiments and real-world deployment results demonstrate that ExDiff effectively performs ungraspable tasks and generalizes to previously unseen target objects and scenes. Videos at - https://exdiff.github.io/index.html
UR - https://www.scopus.com/pages/publications/105029971084
U2 - 10.1109/IROS60139.2025.11246419
DO - 10.1109/IROS60139.2025.11246419
M3 - 会议稿件
AN - SCOPUS:105029971084
T3 - IEEE International Conference on Intelligent Robots and Systems
SP - 1049
EP - 1056
BT - IROS 2025 - 2025 IEEE/RSJ International Conference on Intelligent Robots and Systems, Conference Proceedings
A2 - Laugier, Christian
A2 - Renzaglia, Alessandro
A2 - Atanasov, Nikolay
A2 - Birchfield, Stan
A2 - Cielniak, Grzegorz
A2 - De Mattos, Leonardo
A2 - Fiorini, Laura
A2 - Giguere, Philippe
A2 - Hashimoto, Kenji
A2 - Ibanez-Guzman, Javier
A2 - Kamegawa, Tetsushi
A2 - Lee, Jinoh
A2 - Loianno, Giuseppe
A2 - Luck, Kevin
A2 - Maruyama, Hisataka
A2 - Martinet, Philippe
A2 - Moradi, Hadi
A2 - Nunes, Urbano
A2 - Pettre, Julien
A2 - Pretto, Alberto
A2 - Ranzani, Tommaso
A2 - Ronnau, Arne
A2 - Rossi, Silvia
A2 - Rouse, Elliott
A2 - Ruggiero, Fabio
A2 - Simonin, Olivier
A2 - Wang, Danwei
A2 - Yang, Ming
A2 - Yoshida, Eiichi
A2 - Zhao, Huijing
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2025 IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS 2025
Y2 - 19 October 2025 through 25 October 2025
ER -