Explora Phase II Beta est maintenant en ligne - la découverte de matériel de formation est désormais disponible.

Remarque : Toutes les heures sont affichées selon le fuseau horaire dans lequel l’événement a lieu.

Date: 7 mai 2026, 10:00 - 12:00

Fuseau horaire: heure d’été du Pacifique nord-américain

Langue d'enseignement: Anglais

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Abstract: Most machine learning courses focus on standard workflows -- such as image classification -- where many pre-trained community models are readily available. In this course, we take a different approach by building a model for a custom scientific task: predicting the solution of a partial differential equation (PDE) from a given initial condition. The goal is to train a neural network that acts as a fast surrogate for traditional numerical solvers.

Using JAX, Flax, and Optax, we will train a surrogate model on 2D simulation data that we generate ourselves. Along the way, we will develop a complete machine learning pipeline from scratch: generating synthetic training data via simulations, selecting the right model architecture, training the model on an HPC cluster, making sure it runs efficiently on cluster's GPUs, and evaluating the quality of the surrogate solutions.

Mots-clés: Machine Learning, AI


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