Polynomial networks based adaptive attitude tracking control for NSVs with input constraints and stochastic noises

Volume: 34, Issue: 7, Pages: 124 - 134
Published: Jul 1, 2021
Abstract
This paper proposes a backstepping technique and Multi-dimensional Taylor Polynomial Networks (MTPN) based adaptive attitude tracking control strategy for Near Space Vehicles (NSVs) subjected to input constraints and stochastic input noises. Firstly, considering the control input has stochastic noises, and the attitude motion dynamical model of the NSVs is actually modeled as the Multi-Input Multi-Output (MIMO) stochastic nonlinear system form....
Paper Details
Title
Polynomial networks based adaptive attitude tracking control for NSVs with input constraints and stochastic noises
Published Date
Jul 1, 2021
Volume
34
Issue
7
Pages
124 - 134
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