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Diagnosing with Insights: Structured Analysis of Agent Failures via Behavioral Abstractions

arXiv · AI, language, vision and robotics · article · Sep 2, 2026 · UTC

With the proliferation of LLM agents, the ability to understand and diagnose failures in agents is essential to achieving superior effectiveness and trustworthiness. As agent failures often manifest via long and complex trajectories, manually finding the needles in the haystack is untenable. However, traditional diagnosis techniques for software bugs can hardly address LLM agent failures, while completely relying on LLMs as the judge yields unreliable diagnosis results. To overcome these challenges, this paper presents AGENTSCOPE, a new neuro-symbolic approach for agent failure mode diagnosis.

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Evidence & attribution

First collected: 2026-09-21T05:32:15.665Z. This is not the publication date.