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Multi-finger Manipulation via Trajectory Optimization with Differentiable Rolling and Geometric Constraints

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arxiv 2408.13229 v2 pith:P6SWVECO submitted 2024-08-23 cs.RO

classification cs.RO
keywords methodobjectmanipulationdexterousdifferentiableoptimizationrobotrolling
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Parameterizing finger rolling and finger-object contacts in a differentiable manner is important for formulating dexterous manipulation as a trajectory optimization problem. In contrast to previous methods which often assume simplified geometries of the robot and object or do not explicitly model finger rolling, we propose a method to further extend the capabilities of dexterous manipulation by accounting for non-trivial geometries of both the robot and the object. By integrating the object's Signed Distance Field (SDF) with a sampling method, our method estimates contact and rolling-related variables in a differentiable manner and includes those in a trajectory optimization framework. This formulation naturally allows for the emergence of finger-rolling behaviors, enabling the robot to locally adjust the contact points. To evaluate our method, we introduce a benchmark featuring challenging multi-finger dexterous manipulation tasks, such as screwdriver turning and in-hand reorientation. Our method outperforms baselines in terms of achieving desired object configurations and avoiding dropping the object. We also successfully apply our method to a real-world screwdriver turning task and a cuboid alignment task, demonstrating its robustness to the sim2real gap.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Robotic In-Hand Manipulation for Large-Range Precise Object Movement: The RGMC Champion Solution

    cs.RO 2025-02 conditional novelty 5.0 of 10

    A geometry-free kinematic trajectory optimizer with closed-loop replanning moves grasped objects through 5x5x5 cm goal spaces with roughly 5 mm average position error, winning the RGMC in-hand manipulation track.

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