4.6 Article

ESO-Based Robust and High-Precision Tracking Control for Aerial Manipulation

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IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TASE.2023.3260874

关键词

Quadrotors; Manipulator dynamics; Couplings; Robots; End effectors; Task analysis; Trajectory; Aerial manipulator; Delta arm; extended state observer; aerial weaving

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This paper discusses the tracking control problem of an aerial manipulator and proposes a novel control approach that includes extended state observers (ESOs), ESO-based flight controllers, and a cooperative trajectory planner. Compared to existing approaches, the proposed method requires less measurement information and can estimate the coupling effect with less knowledge about the system model. Experimental results show that the proposed approach achieves an average tracking error of 1 cm, outperforming the PX4 baseline controller's 10 cm performance.
This paper studies the tracking control problem of an aerial manipulator that consists of a quadcopter flying base and a Delta robotic arm. We propose a novel control approach that consists of extended state observers (ESOs) for dynamic coupling estimation, ESO-based flight controllers, and a cooperative trajectory planner. Compared to the state-of-the-art approaches, the proposed one has some attractive features. First, it requires much less measurement information as opposed to the full-body control approaches and hence can be implemented conveniently and efficiently in practice. Second, while the existing approaches estimate the coupling effect based on precise models, the proposed ESOs can do that based on much less information about the system model. The proposed approach is verified by four experiments on a real aerial manipulation platform. The experimental results show that the average tracking error can reach 1 cm by the proposed approach as opposed to 10 cm by the PX4 baseline controller. Although force control is not considered specifically in the approach, the system can complete aerial weaving tasks thanks to the ESOs in the presence of drag forces applied to the end-effector during manipulation.Note to Practitioners-Aerial manipulators have received increasing research attention in recent years due to their wide range of applications. In this paper, we particularly focus on the high-precision and robust control of aerial manipulators. We propose a novel control approach that consists of extended state observers (ESOs) for dynamic coupling estimation, ESO-based flight controllers, and a cooperative trajectory planner. Four experiments on a real aerial manipulation platform demonstrate the effectiveness of the approach. In future research, we will address the control problem when the aerial manipulator contacts the environment.

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