Arxiv paper - From Bytes to Ideas: Language Modeling with Autoregressive U-Nets
AI Breakdown

Arxiv paper - From Bytes to Ideas: Language Modeling with Autoregressive U-Nets

2025-06-24
In this episode, we discuss From Bytes to Ideas: Language Modeling with Autoregressive U-Nets by Mathurin Videau, Badr Youbi Idrissi, Alessandro Leite, Marc Schoenauer, Olivier Teytaud, David Lopez-Paz. The paper introduces an autoregressive U-Net model that dynamically learns its own token embeddings from raw bytes instead of relying on fixed tokenization schemes like BPE. This multi-scale architecture processes text from fine-grained bytes to broader semantic units, enabling predictions at...
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