Natural Language Tools: A Natural Language Approach to Tool Calling In Large Language Agents

October 16, 2025 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Reid T. Johnson, Michelle D. Pain, Jordan D. West arXiv ID 2510.14453 Category cs.CL: Computation & Language Citations 1 Venue arXiv.org Last Checked 5 months ago
Abstract
We present Natural Language Tools (NLT), a framework that replaces programmatic JSON tool calling in large language models (LLMs) with natural language outputs. By decoupling tool selection from response generation, NLT eliminates task interference and format constraints that degrade tool call performance. When evaluated across 10 models and 6,400 trials spanning customer service and mental health domains, NLT improves tool calling accuracy by 18.4 percentage points while reducing output variance by 70%. Open-weight models see the largest gains, surpassing flagship closed-weight alternatives, with implications for model training in both reinforcement learning and supervised fine-tuning stages. These improvements persist under prompt perturbations and extend tool-calling capabilities to models lacking native support.
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