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False Frontiers: Diagnosing and Mitigating Co-Cheating in Self-Evolving Search Agents

The paper addresses co-cheating in self-evolving search agents, where proposers and solvers develop shared errors leading to misleading internal rewards. It introduces Multi-Sample Verification (MSV) and CrossFit methods to mitigate this issue, showing improvements in reducing false agreement and enhancing search performance.

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PublishedSeptember 30, 2026Meijia Chen, Hao Li, Zheng Lu
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WHY IT MAY MATTER

This research is relevant for improving the reliability of self-evolving AI systems by addressing a critical failure mode in their training processes.

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