4.7 Article

Optimal Guaranteed Cost Sliding Mode Control for Constrained-Input Nonlinear Systems With Matched and Unmatched Disturbances

Journal

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TNNLS.2018.2791419

Keywords

Adaptive dynamic programming; nonlinear systems; optimal control; optimal guaranteed cost; single neural network (NN); sliding mode control (SMC); unmatched disturbance

Funding

  1. National Natural Science Foundation of China [61433004, 61627809]
  2. IAPI Fundamental Research Funds [2013ZCX14]

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Based on integral sliding mode and approximate dynamic programming ( ADP) theory, a novel optimal guaranteed cost sliding mode control is designed for constrained-input non-linear systems with matched and unmatched disturbances. When the system moves on the sliding surface, the optimal guaranteed cost control problem of sliding mode dynamics is transformed into the optimal control problem of a reformulated auxiliary system with a modified cost function. The ADP algorithm based on single critic neural network (NN) is applied to obtain the approximate optimal control law for the auxiliary system. Lyapunov techniques are used to demonstrate the convergence of the NN weight errors. In addition, the derived approximate optimal control is verified to guarantee the sliding mode dynamics system to be stable in the sense of uniform ultimate boundedness. Some simulation results are presented to verify the feasibility of the proposed control scheme.

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