cs.AI updates on arXiv.org 10月07日
MAD-Sherlock:突破性多代理辩论系统打击虚假信息
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本文介绍了一种名为MAD-Sherlock的多代理辩论系统,用于检测网络上的虚假信息。该系统无需特定领域微调,通过模拟多代理辩论和跨语境推理,显著提高了检测准确性和可信度。

arXiv:2410.20140v3 Announce Type: replace Abstract: One of the most challenging forms of misinformation involves pairing images with misleading text to create false narratives. Existing AI-driven detection systems often require domain-specific finetuning, limiting generalizability, and offer little insight into their decisions, hindering trust and adoption. We introduce MAD-Sherlock, a multi-agent debate system for out-of-context misinformation detection. MAD-Sherlock frames detection as a multi-agent debate, reflecting the diverse and conflicting discourse found online. Multimodal agents collaborate to assess contextual consistency and retrieve external information to support cross-context reasoning. Our framework is domain- and time-agnostic, requiring no finetuning, yet achieves state-of-the-art accuracy with in-depth explanations. Evaluated on NewsCLIPpings, VERITE, and MMFakeBench, it outperforms prior methods by 2%, 3%, and 5%, respectively. Ablation and user studies show that the debate and resultant explanations significantly improve detection performance and improve trust for both experts and non-experts, positioning MAD-Sherlock as a robust tool for autonomous citizen intelligence.

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虚假信息检测 多代理辩论系统 MAD-Sherlock
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