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The Holistic Storage of Verb+Up Phrases in Text-based and Audio-based Language Models
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Zachary Nicholas Houghton, Yu Zhou, Dan Pluth, Jordan Hosier, Vijay K. Gurbani

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ResearcharXiv cs.CL

The Holistic Storage of Verb+Up Phrases in Text-based and Audio-based Language Models

arXiv:2606.13993v4 Announce Type: replace Abstract: One of the most central aspects of language processing is the ability to trade off between stored representations and abstract knowledge: one must retrieve stored representations, but also generate novel ones by applying productive rules. While recent work has examined abstract knowledge in language models, holistic storage has received far less attention. We probe internal representations in both text-based LLMs and an ASR model, testing whether V+up phrasal verbs develop distinct representations as a function of frequency and predictability. All models show evidence of holistic storage driven by frequency and predictability, further supporting usage-based theories of language.

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This story was published by arXiv cs.CL and written by Zachary Nicholas Houghton, Yu Zhou, Dan Pluth, Jordan Hosier, Vijay K. Gurbani. SyncAI.news shows a preview; the complete article is on the publisher's site.

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