用可变形杆模型实现复杂空间中软硬混合物体的精准协同操作
Coordinated Manipulation of Hybrid Deformable-Rigid Objects in Constrained Environments
- 基于应变的柯西杆模型,融合软硬部件特性进行优化规划
- 实验误差仅3厘米(约5%长度),速度比传统方法快33倍
- 适合需要高精度柔顺操作的机器人场景,如医疗或装配
柔性线性物体(如绳索、电缆)的协调机器人操作已被广泛研究,但在受限环境中处理包含柔性和刚性元件的混合系统仍具挑战。本文提出一种基于准静态优化的操纵规划器,采用基于应变的柯西杆模型,将刚体公式扩展至混合可变形线性物体(hDLO)。该方法利用柔性链接的顺应性,在受限空间中完成刚性工具无法实现的任务空间目标。通过可微分模型与解析梯度,逆静力学问题求解速度相比有限差分基线提升达33倍。后续轨迹优化以逆静力学解为热启动,依赖解析导数才可实际求解。算法在多种hDLO系统上仿真验证,并在双臂机器人系统中对三连杆hDLO进行实验验证。结果表明,规划精度良好,目标标记与实测位置平均变形误差约为3厘米(占可变形段长度的5%)。最后,与适配应变公式的采样可行性规划器对比,证明了所提方法在受限环境下处理混合结构的有效性与适用性。
原文摘要 · Abstract (English)
Coordinated robotic manipulation of deformable linear objects (DLOs), such as ropes and cables, has been widely studied; however, handling hybrid assemblies composed of both deformable and rigid elements in constrained environments remains challenging. This work presents a quasi-static optimization-based manipulation planner that employs a strain-based Cosserat rod model, extending rigid-body formulations to hybrid deformable linear objects (hDLO). The proposed planner exploits the compliance of deformable links to maneuver through constraints while achieving task-space objectives for the object that are unreachable with rigid tools. By leveraging a differentiable model with analytically derived gradients, the method achieves up to a 33x speedup over finite-difference baselines for inverse kinetostatic(IKS) problems. Furthermore, the subsequent trajectory optimization problem, warm-started using the IKS solution, is only practically realizable via analytical derivatives. The proposed algorithm is validated in simulation on various hDLO systems and experimentally on a three-link hDLO manipulated in a constrained environment using a dual-arm robotic system. Experimental results confirm the planner's accuracy, yielding an average deformation error of approximately 3 cm (5% of the deformable link length) between the desired and measured marker positions. Finally, the proposed optimal planner is compared against a sampling-based feasibility planner adapted to the strain-based formulation. The results demonstrate the effectiveness and applicability of the proposed approach for robotic manipulation of hybrid assemblies in constrained environments.
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