Tool Learning with Large Language Models: A Survey
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Tool Learning with Large Language Models: A Survey

19/01/2026 Frontiers Journals

Tool learning with large language models (LLMs) has emerged as a promising paradigm for augmenting the capabilities of LLMs to tackle highly complex problems. Despite growing attention and rapid advancements in this field, the existing literature remains fragmented and lacks systematic organization, posing barriers to entry for newcomers.
To solve the problems, a research team led by Renmin University of China and Baidu published their new survey on 15 August 2025 in Frontiers of Computer Science co-published by Higher Education Press and Springer Nature.

This survey focuses on reviewing existing literature from the two primary aspects (1) why tool learning is beneficial and (2) how tool learning is implemented, enabling a comprehensive understanding of tool learning with LLMs. We first explore the “why” by reviewing both the benefits of tool integration and the inherent benefits of the tool learning paradigm from six specific aspects. In terms of “how”, we systematically review the literature according to a taxonomy of four key stages in the tool learning workflow: task planning, tool selection, tool calling, and response generation.
Additionally, we provide a detailed summary of existing benchmarks and evaluation methods, categorizing them according to their relevance to different stages. Finally, we discuss current challenges and outline potential future directions, aiming to inspire both researchers and industrial developers to further explore this emerging and promising area.
DOI: 10.1007/s11704-024-40678-2
Attached files
  • Fig.1 Illustration of the development trajectory of tool learning
  • Fig.2 Overall workflow for tool learning with large language models
19/01/2026 Frontiers Journals
Regions: Asia, China
Keywords: Applied science, Computing

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