Papers › PAPILLON: Privacy Preservation from Internet-based and Local Language Model Ensembles

PAPILLON: Privacy Preservation from Internet-based and Local Language Model Ensembles

22 Oct 2024arXiv:2410.17127archive 2025-07-28

Li Siyan, Vethavikashini Chithrra Raghuram, Omar Khattab, Julia Hirschberg, Zhou Yu

Users can divulge sensitive information to proprietary LLM providers, raising significant privacy concerns. While open-source models, hosted locally on the user's machine, alleviate some concerns, models that users can host locally are often less capable than proprietary frontier models. Toward preserving user privacy while retaining the best quality, we propose Privacy-Conscious Delegation, a novel task for chaining API-based and local models. We utilize recent public collections of user-LLM interactions to construct a natural benchmark called PUPA, which contains personally identifiable information (PII). To study potential approaches, we devise PAPILLON, a multi-stage LLM pipeline that uses prompt optimization to address a simpler version of our task. Our best pipeline maintains high response quality for 85.5% of user queries while restricting privacy leakage to only 7.5%. We still leave a large margin to the generation quality of proprietary LLMs for future work. Our data and code is available at https://github.com/siyan-sylvia-li/PAPILLON.

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columbia-nlp-lab/papillon officialmentioned in papermentioned on GitHubMIT report
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context_independence columbia-nlp-lab/papillon/pupa/filter_context_dependence.py official repository unverified MIT (permissive) · 7bbb3a6a63326205 · report
generate_extract columbia-nlp-lab/papillon/pupa/create_privacy_span.py official repository unverified MIT (permissive) · cb77a6c5bc751791 · report
parse_model_prompt columbia-nlp-lab/papillon/papillon/evaluate_papillon.py official repository unverified MIT (permissive) · edd8a46261673148 · report
process_scores columbia-nlp-lab/papillon/papillon/llm_judge.py official repository unverified MIT (permissive) · 4d78000412bfa8cb · report
unredact_information columbia-nlp-lab/papillon/pupa/create_privacy_span.py official repository unverified MIT (permissive) · e37bc98bd166fd1f · report

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Language ModelingLanguage Modelling

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