无需传感器即可实现低成本机械臂的稳定力反馈遥操作。
Design and Experimental Validation of Sensorless 4-Channel Bilateral Teleoperation for Low-Cost Manipulators
- 通过动态补偿与扰动观测器估计速度和外力,实现无传感器力反馈。
- 实验表明该方法在高速高接触场景下仍能保持稳定操作性能。
- 适用于低成本机械臂的模仿学习数据采集,提升复杂任务成功率。
低成本机械臂的遥操作因其在模仿学习示范数据采集中的实用性而受到关注。然而,现有大部分低成本系统依赖单向位置控制且缺乏力反馈;实现力反馈式双边遥操作困难,因低成本机械臂通常仅有低分辨率编码器且无关节扭矩传感器。本文提出一种无传感器四通道双边遥操作框架,结合辨识的非线性动力学补偿与基于扰动观测器的速度和外部力估计方案。通过频域分析揭示速度与外力估计带宽间的耦合关系,并基于阻尼比与单一截止频率推导出实用调参指南。真实机器人实验(包括力传感器对比与遥操作任务)表明,该框架可提供实际可用的力估计,在低成本硬件约束下支持高速、高接触场景的稳定遥操作。作为应用,模仿学习实验显示,将估计的力信息融入示范数据后,测试的高接触任务成功率显著提升。
原文摘要 · Abstract (English)
Teleoperation of low-cost manipulators is attracting increasing attention as a practical means of collecting demonstration data for imitation learning. However, most existing low-cost systems rely on unilateral position control without force feedback, while implementing force-feedback bilateral teleoperation is difficult because low-cost manipulators typically have low-resolution encoders and no joint torque sensors. This paper presents a sensorless 4-channel bilateral teleoperation framework that integrates identified nonlinear dynamics compensation with a disturbance-observer-based velocity and external-force estimation scheme. By interpreting the observer structure in the frequency domain, we clarify the coupling between the velocity- and external-force-estimation bandwidths and derive practical tuning guidelines based on the damping ratio and a single cutoff frequency. Real-robot experiments, including force-sensor comparison and teleoperation tasks, demonstrate that the proposed framework provides practically useful force estimates and enables stable teleoperation in high-speed and contact-rich scenarios under low-cost hardware constraints. As an application, imitation-learning experiments demonstrate that incorporating estimated force information into demonstrations improves task success rates in the tested contact-rich manipulation tasks.
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