Instruction Bleed: Cross-Module Interference in Prompt-Composed Agentic Systems

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arXiv cs.AI · Ching-Yu Lin, Yifan Liu · 2026-06-26 AI

[Submitted on 24 Jun 2026]

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Abstract:Practitioners of prompt-composed agentic systems report a recurring failure mode: editing one prompt module silently shifts the behavior of others despite no shared variable or executable dependency. We formalize this as compositional behavioral leakage (CBL): interference between modules sharing a context window. CBL is enabled by architectural non-isolation: transformer self-attention provides no formal boundary between concatenated modules. We probe CBL on a deployed job-evaluation agent (Claude Sonnet 4.6, 144 trials) through a reusable three-channel protocol that perturbs non-focal modules along volume, content, and form. Only the content channel produces a detectable paired effect (Cohen’s d = 0.63, bootstrap 95% CI excluding zero); no recommendation flipped — a sub-threshold regime invisible to standard QA but compounding across the thousands of decisions a deployed agent makes. CBL is orthogonal to known agent-failure axes (adversarial injection, cognitive degradation, multi-agent fault propagation, privacy leakage). We contribute an operational definition, a reusable protocol, a falsifiable prediction set, and a system-class characterization, establishing cross-module interference measurement as a requirement for prompt-composed agent evaluation.

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From: Ching-Yu Lin [view email]
[v1] Wed, 24 Jun 2026 20:09:28 UTC (39 KB)

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추출 본문 · 출처: arxiv.org · https://arxiv.org/abs/2606.26356

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