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Observer-based Finite-time Control of Stochastic Non-strict-feedback Nonlinear Systems
Authors:Zhang  Yan  Wang  Fang
Affiliation:1.College of Mathematics and Systems Science, Shandong University of Science and Technology, Qingdao, 266590, China
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Abstract:

This paper investigates the observer-based adaptive finite-time neural control issue of stochastic non-strict-feedback nonlinear systems. By establishing a state observer and utilizing the approximation property of the neural network, an adaptive neural network output-feedback controller is constructed. The controller solves the issue that the states of stochastic nonlinear system cannot be measured, and assures that all signals in the closed-loop system are bounded. Different from the existing adaptive control researches of stochastic nonlinear systems with unmeasured states, the proposed control scheme can guarantee the finite-time stability of the stochastic nonlinear systems. Furthermore, the effectiveness of the proposed control approach is verified by the simulation results.

Keywords:
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