arXiv:2505.10884cs.RO2025-05被引 2

融合学习与物理模型,精准模拟软工具与刚体的接触交互。

Estimating Deformable-Rigid Contact Interactions for a Deformable Tool via Learning and Model-Based Optimization

  • 用学习模块联合估计刚体运动与软工具受力。
  • 在不同几何和物理条件下,推拉操作误差低于基线方法。
  • 适合软体机器人、精密抓取等需要接触推理的场景。

灵巧操作需要对外部接触进行细致推理。由于人类环境中普遍存在可变形工具、柔性传感器以及日益增多的软体机器人,亟需能够通过接触推理实现灵巧操作的方法,而这些接触无法完全由经典刚体接触模型描述。本文研究可变形工具灵巧操控刚体物体的场景,提出一种混合学习与第一性原理的方法,建模工具与物体间的同步运动与力传递。学习模块负责联合估计刚体运动及可变形工具所施加的接触力;随后提出接触二次规划(Contact Quadratic Program),在准静态平衡与库仑摩擦约束下恢复环境与物体间的力。该系统能同时建模内在与外在运动、接触及力。我们在仿真中训练该方法,并在不同块体几何形状与物理属性下验证其性能,涵盖推移与支点操作。结果表明,该方法优于基线,在多种任务中表现更优,并成功迁移至真实世界交互。视频演示见 https://deform-rigid-contact.github.io/。

原文摘要 · Abstract (English)

Dexterous manipulation requires careful reasoning over extrinsic contacts. The prevalence of deforming tools in human environments, the use of deformable sensors, and the increasing number of soft robots yields a need for approaches that enable dexterous manipulation through contact reasoning where not all contacts are well characterized by classical rigid body contact models. Here, we consider the case of a deforming tool dexterously manipulating a rigid object. We propose a hybrid learning and first-principles approach to the modeling of simultaneous motion and force transfer of tools and objects. The learned module is responsible for jointly estimating the rigid object's motion and the deformable tool's imparted contact forces. We then propose a Contact Quadratic Program to recover forces between the environment and object subject to quasi-static equilibrium and Coulomb friction. The results is a system capable of modeling both intrinsic and extrinsic motions, contacts, and forces during dexterous deformable manipulation. We train our method in simulation and show that our method outperforms baselines under varying block geometries and physical properties, during pushing and pivoting manipulations, and demonstrate transfer to real world interactions. Video results can be found at https://deform-rigid-contact.github.io/.

接触建模软体机器人物理学习

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