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papersSEP 10 04:00 UTC

Paper proposes measuring and optimizing LLM agent harnesses without retraining models

A new arXiv paper studies how LLM tool agents can be improved by modifying the runtime harness around a fixed model, including prompts, tool interfaces, middleware, state handling, and recovery logic. The authors frame this as a resource-bounded harness selection problem, arguing that agent performance can be improved without retraining. The work offers ways to measure and optimize these harness components systematically.

arXivLLM agent harnessesLLM agentsmodel retrainingprompt engineeringtool-use

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