context-pruning

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#context-pruning

Less Context, Better Agents: Efficient Context Engineering for Long-Horizon Tool-Using LLM Agents

arXiv cs.AI · yesterday Cached

This paper evaluates context engineering configurations for LLM agents in enterprise tool-use workflows, showing that summarization with selective pruning achieves 91.6% accuracy while reducing token usage by over 60% compared to full-context baselines.

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#context-pruning

Context Pruning for Coding Agents via Multi-Rubric Latent Reasoning

arXiv cs.AI · 2026-05-18 Cached

LaMR introduces a structured pruning framework for coding agents that decomposes code relevance into semantic evidence and dependency support dimensions, using dedicated CRFs and a mixture-of-experts gate to reduce token usage by up to 31% while maintaining or improving task performance.

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