Papers › Bridging Information-Theoretic and Geometric Compression in Language Models

Bridging Information-Theoretic and Geometric Compression in Language Models

20 Oct 2023arXiv:2310.13620archive 2025-07-28

Emily Cheng, Corentin Kervadec, Marco Baroni

For a language model (LM) to faithfully model human language, it must compress vast, potentially infinite information into relatively few dimensions. We propose analyzing compression in (pre-trained) LMs from two points of view: geometric and information-theoretic. We demonstrate that the two views are highly correlated, such that the intrinsic geometric dimension of linguistic data predicts their coding length under the LM. We then show that, in turn, high compression of a linguistic dataset predicts rapid adaptation to that dataset, confirming that being able to compress linguistic information is an important part of successful LM performance. As a practical byproduct of our analysis, we evaluate a battery of intrinsic dimension estimators for the first time on linguistic data, showing that only some encapsulate the relationship between information-theoretic compression, geometric compression, and ease-of-adaptation.

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generate_tokens chengemily1/id_bridging/lm-corpus.py official repository ran no licence file found · pointer only · 1c268aca91d19bfb · report
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last_token_rep chengemily1/id_bridging/intrinsic_dimension.py official repository ran no licence file found · pointer only · 1139c7a3c2d72424 · report
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pick_batch_and_generate chengemily1/id_bridging/lm-corpus.py official repository unverified no licence file found · pointer only · 783fad2cce6ae106 · report

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