Artificial Intelligence · 26.08.2026, 15:32 UTC
đŹâWe have foundation models for language, not for physicsâ â Anima Anandkumar, Bren Professor of Computing
| Schweregrad | info |
|---|---|
| Kategorie | Artificial Intelligence |
| Quelle | Latent Space â |
| Veröffentlicht | 26.08.2026 UTC |
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A few years ago, Caltech Prof. Anima Anandkumar set out to develop the first open-source weather model with AI. Talking to experts in the field, she was met with skepticism. Weather is chaotic, physics simulations are hard, have been developed for decades, and require supercomputers, the data just isnât there. Despite reservations, Anima went forth and built. Within a year her team had developed FourCastNet, a predictive model that is competitive with the best physics-based simulations available. Thanks to Anima, and her follow up work, anyone can now predict weather accurately over a short timescale using consumer grade GPUs.1 In the fifteen or so science episodes weâve released on Latent.Space, weâve covered atoms, molecules, materials, biology, and math. Anima is a pioneer in studying physical systems that are continuous. Weather, fusion, and fluid or heat flow are huge areas of science that are extremely difficult to model: they are large, chaotic, and fundamentally multi-scale. This is a field the AI community has somewhat neglected, but one we expect will grow fast. We plan to cover large physical systems more in coming episodes.One thing you can glean from Animaâs work is that this area of AI resists the scaling ideas that have permeated the rest of the field. The data isnât there: open source datasets in many of these domains are limited to tens or hundreds of thousands of examples, far from what token-hungry transformers need. Even worse, the resolution that physics demands pushes the context length into the hundreds of billions, so you canât just throw more âŠ
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