Convolutional Neural Networks for LPV-Approximations of Semi-discrete Navier-Stokes Equations
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<pre><code>A `python` module with * a dynamic setup of *Convolutional Neural Networks* in `PyTorch` * an interface to `FEniCS` to generate data from FEM simulations of flows and * a numerical realization of FEM norm in the training neural networks developed to design very low-dimensional LPV approximations of incompressible Navier-Stokes equations.</code></pre> <code>These files contain the core module </code>and the scripts that produce the numerical examples of the paper with doi:10.3389/fams.2022.879140 <pre><code>> Benner, Heiland, Bahmani (2022): *Convolutional Neural Networks for Very Low-dimensional LPV Approximations of Incompressible Navier-Stokes Equations* </code></pre>
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2022-04-12



