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LLM as a Broken Telephone: Iterative Generation Distorts Information

27 February 2025
Amr Mohamed
Mingmeng Geng
Michalis Vazirgiannis
Guokan Shang
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Abstract

As large language models are increasingly responsible for online content, concerns arise about the impact of repeatedly processing their own outputs. Inspired by the "broken telephone" effect in chained human communication, this study investigates whether LLMs similarly distort information through iterative generation. Through translation-based experiments, we find that distortion accumulates over time, influenced by language choice and chain complexity. While degradation is inevitable, it can be mitigated through strategic prompting techniques. These findings contribute to discussions on the long-term effects of AI-mediated information propagation, raising important questions about the reliability of LLM-generated content in iterative workflows.

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@article{mohamed2025_2502.20258,
  title={ LLM as a Broken Telephone: Iterative Generation Distorts Information },
  author={ Amr Mohamed and Mingmeng Geng and Michalis Vazirgiannis and Guokan Shang },
  journal={arXiv preprint arXiv:2502.20258},
  year={ 2025 }
}
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