Relevance as a Vulnerability: How Web Retrieval Degrades Safety Alignment in LLM Agents
AI agents augment large language models with external tools such as web retrieval, enabling grounded and up-to-date responses. However, incorporating external content into the generation pipeline can weaken the safety alignment mechanisms that govern model outputs. Prior work shows that enabling retrieval in agents increases compliance with harmful requests. We introduce AgentREVEAL, a diagnostic framework for analyzing retrieval-induced safety degradation in LLM agents. The framework examines t
Record details
Published: 28 May 2026
Source: arXiv
Category: Research
Topics: Regulation · Safety & alignment · Healthcare · Agents & autonomy
Retrieved: 14 July 2026
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ethics.ai (28 May 2026), “Relevance as a Vulnerability: How Web Retrieval Degrades Safety Alignment in LLM Agents,” evidence record 3549, https://ethics.ai/record/3549 (originally published by arXiv).
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