arXiv:2507.03934cs.RO2025-07中稿 · IROS 2025 | Video:…被引 6

实现异构机械臂在太空机器人中的高鲁棒同步控制

Robust and Modular Multi-Limb Synchronization in Motion Stack for Space Robots with Trajectory Clamping via Hypersphere

  • 用超球面约束多维状态,动态适应系统变化
  • 六条异构机械臂同步轨迹误差小于5%,抗扰能力强
  • 无需详细模型,适合模块化机器人开发

模块化机器人在太空探索中具有巨大潜力,其可靠性、可维修性和可复用性对降低任务成本至关重要。异构单元间的协调对于精准操作(如抓取、足式行走或多人协作)极为关键,但此类系统带来的挑战远超传统整体式机器人架构。本研究提出一种鲁棒的多异构执行器轨迹同步方法,能以最少系统知识动态适应系统变化,具备天然的机器人无关性,极适合模块化设计。通过将多维状态约束于表示允许偏差的超球面内,可依据任务和被控系统调整距离度量,支持约束区域形变。该方法兼容多种机器人平台,是我们新开源通用肢体协调框架Motion-Stack的核心接口(https://github.com/2lian/Motion-Stack)。实验验证了六条高度异构机械臂末端执行器的同步性能,在显著外部扰动下仍能保持轨迹跟踪,并实现快速恢复。

原文摘要 · Abstract (English)

Modular robotics holds immense potential for space exploration, where reliability, repairability, and reusability are critical for cost-effective missions. Coordination between heterogeneous units is paramount for precision tasks -- whether in manipulation, legged locomotion, or multi-robot interaction. Such modular systems introduce challenges far exceeding those in monolithic robot architectures. This study presents a robust method for synchronizing the trajectories of multiple heterogeneous actuators, adapting dynamically to system variations with minimal system knowledge. This design makes it inherently robot-agnostic, thus highly suited for modularity. To ensure smooth trajectory adherence, the multidimensional state is constrained within a hypersphere representing the allowable deviation. The distance metric can be adapted hence, depending on the task and system under control, deformation of the constraint region is possible. This approach is compatible with a wide range of robotic platforms and serves as a core interface for Motion-Stack, our new open-source universal framework for limb coordination (available at https://github.com/2lian/Motion-Stack ). The method is validated by synchronizing the end-effectors of six highly heterogeneous robotic limbs, evaluating both trajectory adherence and recovery from significant external disturbances.

模块化机器人轨迹同步超球面约束

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