利用碰撞时机控制提升机器人操作速度与效率
Impact-Aware Control using Time-Invariant Reference Spreading
- 通过不变参考矢量场耦合碰撞前后控制,减少冲击带来的速度误差
- 在600次实验中验证了控制方法在击打和双臂抓取任务中的有效性
- 无需接触刚度参数,对碰撞不同时性有鲁棒性,适合复杂场景
为提高机器人操作的速度与效率,本文提出一种利用有意同步碰撞的控制方法。该方法基于时不变参考扩展框架,采用部分重叠的碰撞前与碰撞后参考矢量场,并在预期碰撞区域通过碰撞模型进行耦合,从而最小化原本较大的冲击导致的速度误差和控制代价。我们展示如何使用非光滑物理引擎构建适用于复杂场景的碰撞模型,无需接触刚度和阻尼参数。此外,提出一种新型中间碰撞控制模式,可在接触未完全建立时依靠碰撞前速度参考生成位置反馈信号,促进接触完成并平滑过渡到碰撞后模式。首次通过600次机器人击打推移及双臂抓取实验验证了时不变参考扩展控制的有效性。
原文摘要 · Abstract (English)
With the goal of increasing the speed and efficiency in robotic manipulation, a control approach is presented that aims to utilize intentional simultaneous impacts to its advantage. This approach exploits the concept of the time-invariant reference spreading framework, in which partly-overlapping ante- and post-impact reference vector fields are used. These vector fields are coupled via an impact model in proximity of the expected impact area, minimizing the otherwise large impact-induced velocity errors and control efforts. We show how a nonsmooth physics engine can be used to construct this impact model for complex scenarios, which warrants applicability to a large range of possible impact states without requiring contact stiffness and damping parameters. In addition, a novel interim-impact control mode provides robustness in the execution against the inevitable lack of exact impact simultaneity and the corresponding unreliable velocity error during the time when contact is only partially established. This interim mode uses a position feedback signal that is derived from the ante-impact velocity reference to promote contact completion, and smoothly transitions into the post-impact mode. An experimental validation of time-invariant reference spreading control is presented for the first time through a set of 600 robotic hit-and-push and dual-arm grabbing experiments.
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