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Is my data in your retrieval database? membership inference attacks against retrieval augmented generation

3 Pith papers cite this work. Polarity classification is still indexing.

3 Pith papers citing it

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cs.CR 2 cs.IR 1

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UNVERDICTED 3

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representative citing papers

Trustworthiness in Retrieval-Augmented Generation Systems: A Survey

cs.IR · 2024-09-16 · unverdicted · novelty 7.0

Introduces Trust-RAG Compass framework and TRC Bench benchmark to assess RAG trustworthiness across factuality, robustness, fairness, transparency, accountability, and privacy, with evaluations showing performance gaps between LLMs.

Security Considerations for Multi-agent Systems

cs.CR · 2026-03-09 · unverdicted · novelty 6.0

No existing AI security framework covers a majority of the 193 identified multi-agent system threats in any category, with OWASP Agentic Security Initiative achieving the highest overall coverage at 65.3%.

citing papers explorer

Showing 3 of 3 citing papers.

  • Trustworthiness in Retrieval-Augmented Generation Systems: A Survey cs.IR · 2024-09-16 · unverdicted · none · ref 86

    Introduces Trust-RAG Compass framework and TRC Bench benchmark to assess RAG trustworthiness across factuality, robustness, fairness, transparency, accountability, and privacy, with evaluations showing performance gaps between LLMs.

  • Security Considerations for Multi-agent Systems cs.CR · 2026-03-09 · unverdicted · none · ref 259

    No existing AI security framework covers a majority of the 193 identified multi-agent system threats in any category, with OWASP Agentic Security Initiative achieving the highest overall coverage at 65.3%.

  • Position: LLM Watermarking Should Align Stakeholders' Incentives for Practical Adoption cs.CR · 2025-10-21 · unverdicted · none · ref 1

    LLM watermarking adoption is limited by misaligned stakeholder incentives; incentive-aligned approaches such as in-context watermarking can enable practical use in targeted domains like education and peer review.