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Performance of Gradient-Based Solutions versus Genetic Algorithms in the Correlation of Thermal Mathematical Models of Spacecrafts

Producción científica: Contribución a una revistaArtículorevisión exhaustiva

13 Citas (Scopus)
2 Descargas (Pure)

Resumen

The correlation of the thermal mathematical models (TMMs) of spacecrafts with the results of the thermal test is a demanding task in terms of time and effort. Theoretically, it can be automatized by means of optimization techniques, although this is a challenging task. Previous studies have shown the ability of genetic algorithms to perform this task in several cases, although some limitations have been detected. In addition, gradient-based methods, although also presenting some limitations, have provided good solutions in other technical fields. For this reason, the performance of genetic algorithms and gradient-based methods in the correlation of TMMs is discussed in this paper to compare the pros and cons of them. The case of study used in the comparison is a real space instrument flown on board the International Space Station.
Idioma originalInglés
Número de artículo7683457
Páginas (desde-hasta)1-12
Número de páginas12
PublicaciónInternational Journal of Aerospace Engineering
Volumen2017
DOI
EstadoPublicada - 24 may 2017

Palabras clave

  • Thermal Mathematical Model
  • Space
  • Correlation
  • Model adjustment
  • Optimization
  • Gradient-Based solutions
  • Genetic algorithms

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