Extended Linear Regression and Interior Point Optimization for Identification of Model Parameters of Fixed Wing UAVs

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The paper deals with the identification of the system parameters in the nonlinear
dynamic model of fixed wing UAVs. Fixed wings airplanes are popular in long distance
applications and have to be modelled accurately to guarantee efficient control properties.
Different methods are suggested to solve the parameter estimation beginning with the
standard linear regression (LR) and continued with its extension (ELR), the optimization
using interior point methods and finally using the FireFly technique, which is a metaheuristic
algorithm. The methods illustrate the convergence and the speed of these approaches.
The known default parrameter values of a Sekwa UAV were used to demonstrate that the
elaborated identification methods can also reconstruct the numerical values of the
dimensionless system parameters embedded into the nonlinear model using the physical
weighting functions. After the extension of linear regression, MinMax optimization algorithm
was used to get the best and optimal solution and reconstruct the parameters of the Sekwa
aircraft. FireFly optimization gives also comparable results with minmax method. Flight
data was needed for simulation and testing the different approaches. Matlab and toolboxes
were used as simulation software. The results showed the estimated parameters are more
accurate than linear regression estimation. Even though it is a small improvment this will
reflect in all calculations.
- Cím és alcím
- Extended Linear Regression and Interior Point Optimization for Identification of Model Parameters of Fixed Wing UAVs
- Szerző
- Al-sudany, Huda Naji
- Lantos, Béla
- Megjelenés ideje
- 2024
- Hozzáférés szintje
- Open access
- ISSN, e-ISSN
- 1785-8860
- Nyelv
- en
- Terjedelem
- 20 p.
- Tárgyszó
- aircraft model identification, linear regression, min max optimization, firefly optimization
- Változat
- Kiadói változat
- Egyéb azonosítók
- DOI: 10.12700/APH.21.6.2024.6.5
- A cikket/könyvrészletet tartalmazó dokumentum címe
- Acta Polytechnica Hungarica
- A forrás folyóirat éve
- 2024
- A forrás folyóirat évfolyama
- 21. évf.
- A forrás folyóirat száma
- 6. sz.
- Műfaj
- Tudományos cikk
- Tudományterület
- Műszaki tudományok - közlekedés- és járműtudományok
- Egyetem
- Óbudai Egyetem