Model Order Reduction with Neural Networks: Application to Laminar and Turbulent Flows
We investigate the capability of neural network-based model order reduction, i.e., autoencoder (AE), for fluid flows. As an example model, an AE which comprises of convolutional neural networks and multi-layer perceptrons is considered in this study. The AE model is assessed with four canonical flui...
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Veröffentlicht in: | SN computer science 2021-11, Vol.2 (6), p.467, Article 467 |
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