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Learning Meta-Skills for Agent Harness Design in Test-Time AI4AI

The paper explores test-time AI-for-AI, focusing on how a Builder can create better execution environments for a Target while keeping both models' weights fixed. It introduces Meta-Skill, principles derived from Target's execution feedback, which improve performance in tasks like Harness-Bench and NewtonBench.

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PublishedSeptember 29, 2026Cheng Qian, Kunlun Zhu, Beibin Li
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WHY IT MAY MATTER

This approach could enhance AI system self-improvement by enabling agents to build better environments for other agents.

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