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    Infinite-Parameter LLMs: Generating and Adapting Weights from Live Data

    The paper presents Infinite-Parameter LLMs, where a compact hypernetwork creates feed‑forward weights from live user data and updates a Bayesian latent code online, keeping the stored model size constant while effectively having infinite parameters. This design aims to improve over standard in‑context learning and retrieval by persisting knowledge in weights and freeing context space.

    Hacker News front pagearxiv.org2 minpaperHN15743