Mitigating privacy risks in Retrieval-Augmented Generation via locally private entity perturbation

Published: 01 Jan 2025, Last Modified: 15 May 2025Inf. Process. Manag. 2025EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: Highlights•A novel privacy-preserving Retrieval-Augmented Generation (RAG) pipeline: LPRAG.•Entity-specific perturbation ensures targeted privacy preservation for text.•Differentially private perturbation of words, numbers, and phrases.•Extensive experiments are conducted to verify the superiority of our method.
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