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LNR-server-03-critical-facility-identification

šŸ“£ Important Notice

āš ļø As the paper is under review, all contents in this repository are currently not permitted for reuse by anyone until this announcement is removed. Thank you for your understanding! šŸ™

1. Overview & Objectives

This repository contains the complete implementation, experimental data, and supplementary results for the paper ƗƗƗ developed by XXX University in China, and .

Pending publication, the code is shared under a restrictive license. Once the paper is accepted, the repository will transition to a MIT license. Please contact the corresponding author for any inquiries regarding academic use during the review period.

2. Videos of agents operation

2.1 Operation of the developed prototype

↓↓↓ A demonstration of using the developed prototype to operate the TCG-TE LNR agents using graph-guided MCP tools

The full video could be found here

↓↓↓ A demonstration of using the developed prototype to integrate a new MCP server to TCG-TE LNR agents

The full video could be found here

2.2 Operation of agents based on NPG-TE pattern

↓↓↓ A snippet of the operation of NPG-TE agent with discrete MCP tools driven by GPT-5.

↓↓↓ A screenshot of Agent's response

The full video can be found here

↓↓↓ A snippet of the operation of NPG-TE agents with discrete MCP tools driven by GPT-4o.

↓↓↓ A screenshot of Agent's response

The full video can be found here

2.3 Operation of agents based on TCG-TE pattern

↓↓↓ A snippet of the operation of TCG-TE agents with graph-guided MCP tools driven by Claude sonnet 3.7. 12月30ę—„ (1)

The full video can be found here

↓↓↓ A snippet of the operation of TCG-TE agents with graph-guided MCP tools driven by GPT-4.1.

↓↓↓ A screenshot of Agent's response

The full video can be found here

3. Repository Structure

4. Acknowledgments

This work heavily relies on excellent open-source projects, including but not limited to:

  • LangGraph & LangChain

  • Hugging Face MTEB leaderboard

  • NetworkX, PyTorch Geometric, and numerous LLM providers (OpenAI, Anthropic, Qwen, Llama, etc.)

We are deeply grateful to all contributors of these foundational work.

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security - not tested
A
license - permissive license
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quality - not tested

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