Effect of base rotation on the controllability of a redundant soft robotic arm

Hiroki Shigemune, Vito Cacucciolo, M. Cianchetti, H. Sawada, S. Hashimoto, C. Laschi
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Abstract

Soft robotic arms have gained popularity in the recent years because of their dexterity, robustness and safe interaction with humans. However, since these arms are subject to non-linear mechanics and are intrinsically under-actuated, their control still present many challenges. Octopus arms are one of the most popular biological models for soft robotics. It is known that the octopus reaching movement consists in two steps: (1) the rotation of the arm's base towards the target, and (2) the extension of the arm to reach the target. From a robotics point of view, the rotation of the base adds one additional degree of freedom to an already hyper-redundant system. Therefore, its role in the effectiveness of the control is ambiguous. In this work, we investigate the role of the base rotation for learning an effective reaching strategy. We conduct numerical experiments based on a mathematical model of the mechanics of the octopus arm in water and a simple neural network enabling to encode the control strategy through optimization learning. The network node corresponding to the base rotation is switched on or off for comparison. We test the reaching success rate with and without base rotation with targets in various positions. The results show that the addition of the base rotation can be highly beneficial or even detrimental, based on the position of the target. Nonetheless, globally the addition of base rotation affects the control strategy and expand the reachable regions.
基座旋转对冗余柔性机械臂可控性的影响
近年来,柔性机械臂因其灵巧、坚固和与人安全互动而受到广泛欢迎。然而,由于这些机械臂受到非线性力学的影响,并且本质上是欠驱动的,因此它们的控制仍然存在许多挑战。章鱼臂是软体机器人中最流行的生物模型之一。众所周知,章鱼的伸手动作包括两个步骤:(1)手臂的底部向目标旋转,(2)手臂的延伸,以达到目标。从机器人的角度来看,基座的旋转为已经高度冗余的系统增加了一个额外的自由度。因此,它在控制有效性中的作用是模糊的。在这项工作中,我们研究了基础旋转在学习有效到达策略中的作用。我们基于章鱼臂在水中力学的数学模型和一个简单的神经网络进行数值实验,通过优化学习对控制策略进行编码。将基础旋转对应的网络节点打开或关闭以进行比较。我们用不同位置的目标测试有和没有基地旋转的到达成功率。结果表明,根据目标的位置不同,添加碱基旋转可能是非常有益的,甚至是有害的。然而,在全局范围内,基地旋转的加入影响了控制策略,扩大了可达区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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