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Tracking the perspectives of interacting language models

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arxiv 2406.11938 v1 pith:LPFLX6GL submitted 2024-06-17 cs.AI cs.MA

classification cs.AIcs.MA
keywords modelsllmsdatalanguagecommunicationinformationnetworkbecome
verification ladder T0 review T1 audit T2 compute T3 formal
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Large language models (LLMs) are capable of producing high quality information at unprecedented rates. As these models continue to entrench themselves in society, the content they produce will become increasingly pervasive in databases that are, in turn, incorporated into the pre-training data, fine-tuning data, retrieval data, etc. of other language models. In this paper we formalize the idea of a communication network of LLMs and introduce a method for representing the perspective of individual models within a collection of LLMs. Given these tools we systematically study information diffusion in the communication network of LLMs in various simulated settings.

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