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Published on: October 1, 2019
Global fixed-time position-constrained guidance and adaptive fuzzy prescribed performance control using novel shift
Haiyan Tong1, Mingxiao Sun1, Tiantian Luan1
1School of Automation, Harbin University of Science and Technology, 150080, Harbin, China.
This study introduces a novel fixed-time control approach for coordinating multiple unmanned surface vehicles (Multi-USVs). The method ensures stable formation control despite disturbances and constraints, enhancing navigation safety and efficiency.
Area of Science:
- Robotics
- Control Systems Engineering
- Ocean Engineering
Background:
- Coordinating multiple unmanned surface vehicles (Multi-USVs) faces challenges from under-actuation and environmental disturbances.
- Existing formation control methods often struggle with fixed-time constraints and unknown system uncertainties.
Purpose of the Study:
- To develop a global fixed-time constrained guidance and control approach for Multi-USV formations.
- To address challenges in under-actuation, environmental disturbances, and output/tracking error constraints.
Main Methods:
- Proposed a global fixed-time control Lyapunov function (GFCLF) to handle fixed-time output partial constraints.
- Designed a fixed-time asymmetric position-constrained guidance algorithm using line-of-sight principles and a leader-follower structure.
- Developed global fixed-time adaptive fuzzy prescribed performance control laws with a fuzzy logic system to approximate unknown disturbances.
Main Results:
- Achieved global fixed-time tracking control for Multi-USV formations.
- Ensured all tracking error signals are bounded within a fixed time, proving closed-loop system stability.
- Demonstrated the approach's practicality and superiority through simulations on a physical USV model.
Conclusions:
- The proposed global fixed-time constrained guidance and control approach effectively manages Multi-USV formations.
- The method offers enhanced stability and performance in the presence of constraints and unknown disturbances.
- Validated through simulations, the approach presents a significant advancement for autonomous marine systems.
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