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Title:

Diffusion Model and RRT*-Based Methods for Reflected Mass Optimization in Motion Planning

Document type:
Konferenzbeitrag
Author(s):
David Gutierrez-Moreno, Simon Armleder, Yuhwan Kwon, Takumi Hachimine, Yoshihisa Tsurumine, Takamitsu Matsubara, Gordon Cheng
Abstract:
Optimizing a robot’s posture can be advantageous for managing interaction forces with the environment. By optimizing the Reflected Mass (RM) along entire trajectories, the robot’s posture can be adjusted to minimize impact forces for safety or maximize them for tasks that require high force, such as pushing or striking. However, the integration of RM optimization within motion planning remains underexplored. To address this, we introduce two new approaches for optimizing RM in motion planning: a...     »
Editor:
IEEE
Book / Congress title:
2025 IEEE/SICE International Symposium on System Integration (SII)
Year:
2025
Reviewed:
ja
Language:
en
Fulltext / DOI:
doi: 10.1109/SII59315.2025.10871036
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