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[ARTICLE · art-94712] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

Better, Faster, Stronger: Programmatic Skill Learning Best Reduces Agent Cost

A new study from arXiv (2608.11338v1) argues that programmatic skill learning, where skills are represented as executable programs, achieves the best cost reduction for LLM agents adapting to novel domains. The authors propose SpeedRunner, a coding agent that analyzes past trajectories and refactors skills, and show it consistently achieves the frontier in learning and cost reduction across three embodied environments while remaining robust against distribution shifts and environmental randomness.

read1 min views1 publishedAug 13, 2026

arXiv:2608.11338v1 Announce Type: new Abstract: Recently, the practice of augmenting LLM agent capability with skills has gained prevalence. We explore the cost effective adaptation of agents to novel domains by means of learning skills. Existing works focus on performance gain over cost effectiveness. As a result, little is known about what skill learning strategies save cost. We argue that among all the different skill learning methods, those that view skills as programs can achieve the best cost reduction. By executing sequences of actions deterministically, a program-augmented agent can reliably and cheaply achieve goals that would otherwise require trial and error and risk degenerate behavior over long horizons. An agent can learn at inference time by incrementally discovering these programs and equipping them for future tasks. We hypothesize that past trajectories contain enough signal to guide skill learning, even without replay or validation, provided the agent can learn to analyze them. To test our claims, we propose SpeedRunner, a coding agent that analyzes trajectories and refactors skills for better performance on future tasks. Across three different embodied environments, we show that SpeedRunner consistently achieves the frontier in learning and cost reduction while remaining robust against distribution shifts and environmental randomness.

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