arXiv:2412.00492cs.RO2024-12

提出一种无延迟的机器人表面控制方法,可高效操控大量执行器。

A Delay-free Control Method Based On Function Approximation And Broadcast For Robotic Surface And Multiactuator Systems

  • 用函数逼近法计算目标形状,通过广播系数实现分布式控制
  • 无论执行器数量多少,延迟始终恒定,实验验证了系统无关性
  • 适合大规模柔性机器人系统,尤其适用于动态物体操作任务

由众多执行器组成的机器人表面可改变形状以完成人机交互和物体运输等任务。增加执行器数量虽能提升能力,但传统控制需成比例增加通信带宽以避免时间延迟。本文提出一种新控制方法,无论执行器数量如何,延迟始终保持恒定。该方法具有分布式特性:先通过离散余弦变换或匹配追踪等函数逼近算法估算目标形状,再将逼近系数广播至各执行器,由其自主计算输入。我们搭建了机械针阵列实验系统,测量延迟随执行器数量的变化,验证了系统规模无关的延迟特性。实验对比了本文方法与标准串行控制在形状逼近精度上的表现,结果与理论预测高度一致,且在相同精度下所需控制消息更少,效率更高。该方法还可用于动态任务,如物体操纵。

原文摘要 · Abstract (English)

Robotic surface consisting of many actuators can change shape to perform tasks, such as facilitating human-machine interactions and transporting objects. Increasing the number of actuators can enhance the robot's capacity, but controlling them requires communication bandwidth to increase equally in order to avoid time delays. We propose a novel control method that has constant time delays no matter how many actuators are in the robot. Having a distributed nature, the method first approximates target shapes, then broadcasts the approximation coefficients to the actuators, and relies on themselves to compute the inputs. We build a robotic pin array and measure the time delay as a function of the number of actuators to confirm the system size-independent scaling behavior. The shape-changing ability is achieved based on function approximation algorithms, i.e. discrete cosine transform or matching pursuit. We perform experiments to approximate target shapes and make quantitative comparison with those obtained from standard sequential control method. A good agreement between the experiments and theoretical predictions is achieved, and our method is more efficient in the sense that it requires less control messages to generate shapes with the same accuracy. Our method is also capable of dynamic tasks such as object manipulation.

机器人控制分布式系统函数逼近多执行器

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