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Agentic Reasoning: A Streamlined Framework for Enhancing LLM Reasoning with Agentic Tools
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本文介绍了一种名为Agentic Reasoning的框架,通过整合外部工具使用代理,增强大型语言模型的推理能力。该框架结合了网络搜索、代码执行和结构化记忆,解决了复杂问题。特别强调了Mind-Map代理和Web-Search代理在提升LLM推理效果中的作用。

arXiv:2502.04644v2 Announce Type: replace Abstract: We introduce Agentic Reasoning, a framework that enhances large language model (LLM) reasoning by integrating external tool-using agents. Agentic Reasoning dynamically leverages web search, code execution, and structured memory to address complex problems requiring deep research. A key innovation in our framework is the Mind-Map agent, which constructs a structured knowledge graph to store reasoning context and track logical relationships, ensuring coherence in long reasoning chains with extensive tool usage. Additionally, we conduct a comprehensive exploration of the Web-Search agent, leading to a highly effective search mechanism that surpasses all prior approaches. When deployed on DeepSeek-R1, our method achieves a new state-of-the-art (SOTA) among public models and delivers performance comparable to OpenAI Deep Research, the leading proprietary model in this domain. Extensive ablation studies validate the optimal selection of agentic tools and confirm the effectiveness of our Mind-Map and Web-Search agents in enhancing LLM reasoning. The code is at: https://github.com/theworldofagents/Agentic-Reasoning

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Agentic Reasoning LLM推理 大型语言模型 工具代理 网络搜索
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