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bokomslag Probabilistic Optimisation Of Composite Structures: Machine Learning For Design Optimisation
Data & IT

Probabilistic Optimisation Of Composite Structures: Machine Learning For Design Optimisation

Kwangkyu Alex Yoo Omar Bacarreza Nogales M H Ferri Aliabadi

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  • 200 sidor
  • 2025
This book introduces an innovative approach to multi-fidelity probabilistic optimisation for aircraft composite structures, addressing the challenge of balancing reliability with computational cost. Probabilistic optimisation seeks statistically reliable and robust solutions by accounting for uncertainties in data, such as material properties and geometry tolerances. Traditional approaches using high-fidelity models, though accurate, are computationally expensive and time-consuming, especially when using complex methods like Monte Carlo simulations and gradient calculations.For the first time, the proposed multi-fidelity method combines high- and low-fidelity models, enabling high-fidelity models to focus on specific areas of the design space, while low-fidelity models explore the entire space. Machine learning technologies, such as artificial neural networks and non-linear auto-regressive Gaussian processes, fill information gaps between different fidelity models, enhancing model accuracy. The multi-fidelity probabilistic optimisation framework is demonstrated through the reliability-based and robust design problems of aircraft composite structures under a thermo-mechanical environment, showing acceptable accuracy and reductions in computational time.
  • Författare: Kwangkyu Alex Yoo, Omar Bacarreza Nogales, M H Ferri Aliabadi
  • Format: Inbunden
  • ISBN: 9781800616844
  • Språk: Engelska
  • Antal sidor: 200
  • Utgivningsdatum: 2025-04-03
  • Förlag: World Scientific Europe Ltd