Discrete-time repetitive optimal control: Robotic manipulators
This paper proposes a discrete-time repetitive optimal control of electrically driven robotic manipulators using an uncertainty estimator. The proposed control method can be used for performing repetitive motion, which covers many industrial applications of robotic manipulators. This kind of control...
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Shahrood University of Technology
2016-01-01
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doaj-6ea5c4fbc5184f6085269c98552b8d222020-11-25T00:35:50ZengShahrood University of TechnologyJournal of Artificial Intelligence and Data Mining2322-52112322-44442016-01-014111712410.5829/idosi.JAIDM.2016.04.01.13375Discrete-time repetitive optimal control: Robotic manipulatorsM. M. Fateh0M. Baluchzadeh1Department of Electrical and Robotic Engineering, University of Shahrood, Shahrood, Iran.Department of Electrical and Robotic Engineering, University of Shahrood, Shahrood, Iran.This paper proposes a discrete-time repetitive optimal control of electrically driven robotic manipulators using an uncertainty estimator. The proposed control method can be used for performing repetitive motion, which covers many industrial applications of robotic manipulators. This kind of control law is in the class of torque-based control in which the joint torques are generated by permanent magnet dc motors in the current mode. The motor current is regulated using a proportional-integral controller. The novelty of this paper is a modification in using the discrete-time linear quadratic control for the robot manipulator, which is a nonlinear uncertain system. For this purpose, a novel discrete linear time-variant model is introduced for the robotic system. Then, a time-delay uncertainty estimator is added to the discrete-time linear quadratic control to compensate the nonlinearity and uncertainty associated with the model. The proposed control approach is verified by stability analysis. Simulation results show the superiority of the proposed discrete-time repetitive optimal control over the discrete-time linear quadratic control.http://jad.shahroodut.ac.ir/article_375_c81fc82bc5b71fbd73158a33f87e26bd.pdfDiscrete-Time Linear Quadratic ControlOptimal controlRepetitive ControlElectrically Driven Robotic ManipulatorsUncertainty Estimator |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. M. Fateh M. Baluchzadeh |
spellingShingle |
M. M. Fateh M. Baluchzadeh Discrete-time repetitive optimal control: Robotic manipulators Journal of Artificial Intelligence and Data Mining Discrete-Time Linear Quadratic Control Optimal control Repetitive Control Electrically Driven Robotic Manipulators Uncertainty Estimator |
author_facet |
M. M. Fateh M. Baluchzadeh |
author_sort |
M. M. Fateh |
title |
Discrete-time repetitive optimal control: Robotic manipulators |
title_short |
Discrete-time repetitive optimal control: Robotic manipulators |
title_full |
Discrete-time repetitive optimal control: Robotic manipulators |
title_fullStr |
Discrete-time repetitive optimal control: Robotic manipulators |
title_full_unstemmed |
Discrete-time repetitive optimal control: Robotic manipulators |
title_sort |
discrete-time repetitive optimal control: robotic manipulators |
publisher |
Shahrood University of Technology |
series |
Journal of Artificial Intelligence and Data Mining |
issn |
2322-5211 2322-4444 |
publishDate |
2016-01-01 |
description |
This paper proposes a discrete-time repetitive optimal control of electrically driven robotic manipulators using an uncertainty estimator. The proposed control method can be used for performing repetitive motion, which covers many industrial applications of robotic manipulators. This kind of control law is in the class of torque-based control in which the joint torques are generated by permanent magnet dc motors in the current mode. The motor current is regulated using a proportional-integral controller. The novelty of this paper is a modification in using the discrete-time linear quadratic control for the robot manipulator, which is a nonlinear uncertain system. For this purpose, a novel discrete linear time-variant model is introduced for the robotic system. Then, a time-delay uncertainty estimator is added to the discrete-time linear quadratic control to compensate the nonlinearity and uncertainty associated with the model. The proposed control approach is verified by stability analysis. Simulation results show the superiority of the proposed discrete-time repetitive optimal control over the discrete-time linear quadratic control. |
topic |
Discrete-Time Linear Quadratic Control Optimal control Repetitive Control Electrically Driven Robotic Manipulators Uncertainty Estimator |
url |
http://jad.shahroodut.ac.ir/article_375_c81fc82bc5b71fbd73158a33f87e26bd.pdf |
work_keys_str_mv |
AT mmfateh discretetimerepetitiveoptimalcontrolroboticmanipulators AT mbaluchzadeh discretetimerepetitiveoptimalcontrolroboticmanipulators |
_version_ |
1725307414507421696 |