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A neural flexible PID controller for task-space control of robotic manipulators

Nguyen Tran Minh Nguyet, Dang Xuan Ba

发表年份
2023
引用次数
15
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摘要

This paper proposes an adaptive robust Jacobian-based controller for task-space position-tracking control of robotic manipulators. Structure of the controller is built up on a traditional Proportional-Integral-Derivative (PID) framework. An additional neural control signal is next synthesized under a non-linear learning law to compensate for internal and external disturbances in the robot dynamics. To provide the strong robustness of such the controller, a new gain learning feature is then integrated to automatically adjust the PID gains for various working conditions. Stability of the closed-loop system is guaranteed by Lyapunov constraints. Effectiveness of the proposed controller is carefully verified by intensive simulation results.

关键词

PID controllerControl theory (sociology)Computer scienceRobustness (evolution)Control engineeringJacobian matrix and determinantLyapunov functionRobot manipulatorController (irrigation)Robot

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