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  4. DiffAirfoil: An Efficient Novel Airfoil Sampler Based on Latent Space Diffusion Model for Aerodynamic Shape Optimization
 
conference paper not in proceedings

DiffAirfoil: An Efficient Novel Airfoil Sampler Based on Latent Space Diffusion Model for Aerodynamic Shape Optimization

Wei, Zhen  
•
Dufour, Edouard  
•
Pelletier, Colin  
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2024
AIAA AVIATION Forum

Surrogate-based optimization is widely used for aerodynamic shape optimization, and its effectiveness depends on representative sampling of the design space. However, traditional sampling methods are hard-pressed to effectively sample high-dimensional design spaces. This paper introduces DiffAirfoil, a newairfoil sampling method based on diffusion in an automatically learned latent space. DiffAirfoil is highly data-efficient and requires significantly fewer training geometries than Generative Adversarial Networks. It ensures the validity of sampled airfoils through an automatic parameterization. We demonstrate DiffAirfoil’s capability to generate diverse and valid 2D airfoil shapes, while also facilitating conditional generation without the need for adaptation or retraining. Comprehensive benchmarks show that our method offers significant advantages in data efficiency, ease of implementation, and adherence to conditions. Therefore, DiffAirfoil presents a promising approach to enhancing sampling efficiency for surrogate models in aerodynamic shape optimization tasks.

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Type
conference paper not in proceedings
Author(s)
Wei, Zhen  
Dufour, Edouard  
Pelletier, Colin  
Fua, Pascal  
Bauerheim, Michaël
Date Issued

2024

Total of pages

18

Subjects

Aerodynamic Shape Optimization

•

Diffusion Model

•

Generative Model

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CVLAB  
Event nameEvent placeEvent date
AIAA AVIATION Forum

Las Vegas, NV, USA

July 29–August 2, 2024

Available on Infoscience
July 1, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/208909
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