Public repository for the proposal “Physics-Informed Machine Learning Simulator for Wildfire Propagation” - MLJC University of Turin - ProjectX2020 Competition (UofT AI)
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Updated
Oct 7, 2021 - Jupyter Notebook
Public repository for the proposal “Physics-Informed Machine Learning Simulator for Wildfire Propagation” - MLJC University of Turin - ProjectX2020 Competition (UofT AI)
Latent Differential Equations models in Julia.
PSE/PSRN: Fast and efficient symbolic expression discovery through parallelized symbolic enumeration. Evaluates millions of expressions simultaneously on GPU with automated subtree reuse.
Folax (Finite Operator Learning with JAX) is a framework for solving and optimizing PDEs by integrating machine learning with numerical methods in computational mechanics.
HookeAI: An open-source ADiMU framework
Graphorge: Open-source forge of Graph Neural Networks
A Physics-Informed Neural Network (PINN) implemented in PyTorch to solve the N-dimensional coupled spring-mass system ODEs.
Lagrangian and Hamiltonian Neural Ordinary Differential Equations (NODEs)
Numerical solutions of several PDEs using Physics-Informed Neural Networks
🔍 Solve N-dimensional coupled spring-mass systems using a Physics-Informed Neural Network in PyTorch, without needing ground-truth data.
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