Genetic programming guidance control system for a reentry vehicle under uncertainties
Marchetti, Francesco and Minisci, Edmondo (2021) Genetic programming guidance control system for a reentry vehicle under uncertainties. Mathematics, 9 (16). 1868. (https://doi.org/10.3390/math9161868)
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Abstract
As technology improves, the complexity of controlled systems increases as well. Alongside it, these systems need to face new challenges, which are made available by this technology advancement. To overcome these challenges, the incorporation of AI into control systems is changing its status, from being just an experiment made in academia, towards a necessity. Several methods to perform this integration of AI into control systems have been considered in the past. In this work, an approach involving GP to produce, offline, a control law for a reentry vehicle in the presence of uncertainties on the environment and plant models is studied, implemented and tested. The results show the robustness of the proposed approach, which is capable of producing a control law of a complex nonlinear system in the presence of big uncertainties. This research aims to describe and analyze the effectiveness of a control approach to generate a nonlinear control law for a highly nonlinear system in an automated way. Such an approach would benefit the control practitioners by providing an alternative to classical control approaches, without having to rely on linearization techniques.
ORCID iDs
Marchetti, Francesco ORCID: https://orcid.org/0000-0003-4552-0467 and Minisci, Edmondo ORCID: https://orcid.org/0000-0001-9951-8528;-
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Item type: Article ID code: 77362 Dates: DateEvent6 August 2021Published3 August 2021Accepted30 June 2021SubmittedSubjects: Technology > Mechanical engineering and machinery Department: Faculty of Engineering > Mechanical and Aerospace Engineering
Strategic Research Themes > Ocean, Air and Space
Strategic Research Themes > Measurement Science and Enabling TechnologiesDepositing user: Pure Administrator Date deposited: 11 Aug 2021 14:42 Last modified: 12 Dec 2024 11:35 URI: https://strathprints.strath.ac.uk/id/eprint/77362