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Completed H2020 European Commission

MAchinE Learning for Scalable meTeoROlogy and cliMate

€4.31M EUR

Funder European Commission
Recipient Organization European Centre for Medium-Range Weather Forecasts
Country United Kingdom
Start Date Apr 01, 2021
End Date Mar 31, 2024
Duration 1,095 days
Number of Grantees 7
Roles Participant; Coordinator
Data Source European Commission
Grant ID 955513
Grant Description

To develop Europe’s computer architecture of the future, MAELSTROM will co-design bespoke compute system designs for optimal application performance and energy efficiency, a software framework to optimise usability and training efficiency for machine learning at scale, and large-scale machine learning applications for the domain of weather and climate science.The MAELSTROM compute system designs will benchmark the applications across a range of computing systems regarding energy consumption, time-to-solution, numerical precision and solution accuracy.

Customised compute systems will be designed that are optimised for application needs to strengthen Europe’s high-performance computing portfolio and to pull recent hardware developments, driven by general machine learning applications, toward needs of weather and climate applications.The MAELSTROM software framework will enable scientists to apply and compare machine learning tools and libraries efficiently across a wide range of computer systems.

A user interface will link application developers with compute system designers, and automated benchmarking and error detection of machine learning solutions will be performed during the development phase.

Tools will be published as open source.The MAELSTROM machine learning applications will cover all important components of the workflow of weather and climate predictions including the processing of observations, the assimilation of observations to generate initial and reference conditions, model simulations, as well as post-processing of model data and the development of forecast products.

For each application, benchmark datasets with up to 10 terabytes of data will be published online for training and machine learning tool-developments at the scale of the fastest supercomputers in the world.

MAELSTROM machine learning solutions will serve as blueprint for a wide range of machine learning applications on supercomputers in the future.

All Grantees

Forschungszentrum Julich Gmbh; 4Cast Gmbh & Co Kg; Universite Du Luxembourg; E 4 Computer Engineering Spa; Eidgenoessische Technische Hochschule Zuerich; European Centre for Medium-Range Weather Forecasts; Meteorologisk Institutt

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