arXiv:2602.19273cs.RO2026-02被引 1

无需传感器,仅靠摄像头实现软体机械臂整体形状精确控制

3D Shape Control of Extensible Multi-Section Soft Continuum Robots via Visual Servoing

  • 基于视觉的2.5D形状伺服控制,不依赖内部传感器
  • 可实现全身体型调节,稳态误差小于1毫米
  • 适合无自感知能力的多段伸缩软体机械臂

本文提出一种新型基于视觉的控制算法,用于调节可伸缩多段软体连续机械臂的整体形态。与以往仅控制末端位姿的方法不同,本方法直接调控整个机器人的构型,充分利用其运动学冗余性。所提基于模型的2.5D形状视觉伺服在3D工作空间中实现全局渐近稳定收敛,优于文献中存在局部极小值的方法。该方法无需本体感知传感器信息,仅通过外部相机获取机器人全身图像来估计状态并闭合控制回路。传统视觉伺服需参考姿态图像生成特征,而本方法采用逆运动学求解器生成目标构型的参考特征,无需实际参考图像。实验在多段连续机械臂上验证了控制器在精确控制整体形状的同时实现末端精确定位的能力。结果表明,系统具有平滑的瞬态响应和不超过1毫米的稳态误差。概念性操作实验(堆叠、倾倒、拉取)进一步展示了控制器的实际应用潜力。

原文摘要 · Abstract (English)

In this paper, we propose a novel vision-based control algorithm for regulating the whole body shape of extensible multisection soft continuum manipulators. Contrary to existing vision-based control algorithms in the literature that regulate the robot's end effector pose, our proposed control algorithm regulates the robot's whole body configuration, enabling us to leverage its kinematic redundancy. Additionally, our model-based 2.5D shape visual servoing provides globally stable asymptotic convergence in the robot's 3D workspace compared to the closest works in the literature that report local minima. Unlike existing visual servoing algorithms in the literature, our approach does not require information from proprioceptive sensors, making it suitable for continuum manipulators without such capabilities. Instead, robot state is estimated from images acquired by an external camera that observes the robot's whole body shape and is also utilized to close the shape control loop. Traditionally, visual servoing schemes require an image of the robot at its reference pose to generate the reference features. In this work, we utilize an inverse kinematics solver to generate reference features for the desired robot configuration and do not require images of the robot at the reference. Experiments are performed on a multisection continuum manipulator demonstrating the controller's capability to regulate the robot's whole body shape while precisely positioning the robot's end effector. Results validate our controller's ability to regulate the shape of continuum robots while demonstrating a smooth transient response and a steady-state error within 1 mm. Proof-of-concept object manipulation experiments including stacking, pouring, and pulling tasks are performed to demonstrate our controller's applicability.

软体机器人视觉伺服形状控制无传感控制

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