Tracking the perspectives of interacting language models
Hayden S. Helm, Brandon Duderstadt, Youngser Park, Carey E. Priebe
Abstract
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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Install the CLIlune papers fulltext 2e7372e0-503e-4409-bb72-9d8da69427b9Cited by top-tier papers5
- Detecting Perspective Shifts in Multi-Agent SystemsEric Bridgeford, Hayden HelmICML 2026 · 4 citations
- A Model of the Language ProcessBrandon Duderstadt, Hayden S. HelmACL 2026 · 1 citation
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- LLM as a Broken Telephone: Iterative Generation Distorts InformationAmr Mohamed, Mingmeng Geng, Michalis Vazirgiannis, Guokan ShangACL 2025
- Query-efficient model evaluation using cached responsesHayden Helm, Ben Johnson, Carey PriebeICML 2026
Builds on5
- Robust Speech Recognition via Large-Scale Weak SupervisionAlec Radford, Jong Wook Kim, Tao Xu, Greg Brockman et al.ICML 2023 · 6,966 citations
- MiniLM: Deep Self-Attention Distillation for Task-Agnostic Compression of Pre-Trained TransformersWenhui Wang, Furu Wei, Li Dong, Hangbo Bao et al.NeurIPS 2020 · 2,727 citations
- Generative Agents: Interactive Simulacra of Human BehaviorJoon Sung Park, Joseph C. O'Brien, Carrie Jun Cai, Meredith Ringel Morris et al.UIST 2023 · 1,882 citations
- Pythia: A Suite for Analyzing Large Language Models Across Training and ScalingStella Biderman, Hailey Schoelkopf, Quentin Gregory Anthony, Herbie Bradley et al.ICML 2023 · 1,822 citations
- Make-A-Video: Text-to-Video Generation without Text-Video DataUriel Singer, Adam Polyak, Thomas Hayes, Xi Yin et al.ICLR 2023 · 313 citations
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