arXiv:2609.18597v1 Announce Type: new Abstract: Propagation structures provide crucial evidence for fake news detection, yet existing approaches primarily rely on supervised GNN-based models, which require substantial labeled data and exhibit limited generalization. Although large language models (LLMs) exhibit strong reasoning capabilities, directly feeding them raw propagation graphs creates a significant modality mismatch and severe information overload, making structure-aware reasoning unreliable in zero-shot and few-shot settings. To bridge this gap, we propose MAGER, a multi-agent genetic evolution framework that automatically discovers meta-paths optimized for LLM reasoning. By compressing complex propagation graphs into informative subgraphs, the evolved meta-paths alleviate both information overload and modality mismatch, enabling frozen LLMs to perform structure-aware veracity reasoning. We further introduce a graph in-context learning strategy that retrieves semantically and structurally similar demonstrations to strengthen classification and reasoning. Extensive experiments show that MAGER substantially improves frozen LLMs as standalone fake news detectors in data-efficient settings. Our code is available at https://github.com/SenticNet/MAGER.
Reasoning through Evolution: Automatic Meta-path Discovery for LLM-based Fake News Detection
Researchers proposed MAGER, a multi-agent genetic evolution framework that automatically discovers meta-paths optimized for LLM reasoning in fake news detection, according to the arXiv paper 2609.18597v1. MAGER compresses complex propagation graphs into informative subgraphs to reduce information overload and modality mismatch, and adds a graph in-context learning strategy that retrieves semantically and structurally similar demonstrations. Experiments show MAGER substantially improves frozen LLMs as standalone fake news detectors in data-efficient settings, with code available at https://github.com/SenticNet/MAGER.
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