Hoefler, T., Stevens, B., Prein, A. F., Baehr, J., Schulthess, T., Stocker, T. F., Taylor, J., Klocke, D., Manninen, P., Forster, P. M., Kölling, T., Gruber, N., Anzt, H., Frauen, C., Ziemen, F., Klöwer, M., Kashinath, K., Schär, C., Fuhrer, O. and Lawrence, B. N.
ORCID: https://orcid.org/0000-0001-9262-7860
(2023)
Earth Virtualization Engines: a technical perspective.
Computing in Science and Engineering, 25 (3).
pp. 50-59.
ISSN 1521-9615
doi: 10.1109/MCSE.2023.3311148
Abstract/Summary
Participants of the Berlin Summit on Earth Virtualization Engines (EVEs) discussed ideas and concepts to improve our ability to cope with climate change. EVEs aim to provide interactive and accessible climate simulations and data for a wide range of users. They combine high-resolution physics-based models with machine learning techniques to improve the fidelity, efficiency, and interpretability of climate projections. At their core, EVEs offer a federated data layer that enables simple and fast access to exabyte-sized climate data through simple interfaces. In this article, we summarize the technical challenges and opportunities for developing EVEs, and argue that they are essential for addressing the consequences of climate change.
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| Item Type | Article |
| URI | https://reading-pure-test.eprints-hosting.org/id/eprint/114091 |
| Identification Number/DOI | 10.1109/MCSE.2023.3311148 |
| Refereed | No |
| Divisions | Central Services Science > School of Mathematical, Physical and Computational Sciences > Department of Meteorology |
| Download/View statistics | View download statistics for this item |
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