Seduced by the Narrative: Assessing Rule Adherence in Semi-Open Textual Sandboxes 文章

ArXiv CS.CL2026-07-07PAPERen作者: Weiying Chen, Junlong Shen, Zhanyuan Guo, Xiaoou Zhou

详细信息

来源站点
ArXiv CS.CL
作者
Weiying Chen, Junlong Shen, Zhanyuan Guo, Xiaoou Zhou
文章类型
PAPER
语言
en
发布日期
2026-07-07

摘要

arXiv:2607.02802v1 Announce Type: new Abstract: As LLMs are increasingly deployed as autonomous adjudicators in semi-open textual game environments, robust rule adherence becomes critical when user intent conflicts with system rules. However, these models are trained to be helpful and compliant, leaving them vulnerable to a class of attacks we term \textit{Rhetorical Injection}, where adversarial users exploit narrative framing techniques such as pseudo-logical reasoning and authoritative coercion to bypass adjudication logic. We present CoC-Seduce, a multi-agent adversarial benchmark built on Tabletop Role-Playing Game (TRPG) mechanics, an ideal instantiation of semi-open environments where rules are explicit for adjudication, yet interaction remains entirely in natural language. Three frontier models, i.e., GPT-5.4, Claude Sonnet 4.6, Gemini 3.5 Flash, serve as adversarial generators producing 5,376 samples across 4 world settings and 16 skill categories.

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