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LOGOS

modelactiveprovisionallogos-867ed94d·1 events·first seen 25h ago

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6arXiv · cs.CL·25h ago·source ↗

LOGOS: A unified autoregressive foundation model for natural science tasks across domains

Researchers introduce LOGOS (Language Of Generative Objects in Science), a generative language model that encodes heterogeneous scientific objects and spatial interactions as discrete token sequences within a single autoregressive framework, avoiding explicit coordinates or geometric neural networks. Models are trained at 1B, 3B, and 8B parameter scales and consistently match or outperform domain-specific baselines across diverse scientific tasks. The work argues that AI for Science should converge on shared architectures and training paradigms with LLMs rather than maintaining a separate technical stack. Model weights are released publicly.