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In Dialogue with Intelligence: Toward Insightful Co-Augmentation
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Eleni Vasilaki

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ResearcharXiv cs.AI

In Dialogue with Intelligence: Toward Insightful Co-Augmentation

arXiv:2505.22767v4 Announce Type: replace-cross Abstract: Dialogue with a large language model can lead a person to insight: a sudden change in how they understand a problem. This perspective asks how model activity relates to insight as a dialogue unfolds. I propose that part of the intelligence expressed in dialogue arises from two interacting recurrences: each generated token becomes context for the next, and each response returns through the person, whose interpretation and new observations reshape what the model receives. Within this loop, the model's contribution shifts between modes, from echoing familiar formulations to offering a framing that opens a new direction for the person to develop. These modes may correspond to distinguishable patterns of model activity. A memory "spine" that selects which context is carried forward could elicit productive patterns again while the ideas themselves change. Public records of human-model dialogue, activity recorded from open-weight models and tools from computational neuroscience make these proposals testable.

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This story was published by arXiv cs.AI and written by Eleni Vasilaki. SyncAI.news shows a preview; the complete article is on the publisher's site.

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