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Intent-Driven Network Management with Multi-Agent LLMs: The Confucius Framework

  • Zhaodong Wang
  • , Samuel Lin
  • , Guanqing Yan
  • , Soudeh Ghorbani
  • , Minlan Yu
  • , Jiawei Zhou
  • , Nathan Hu
  • , Lopa Baruah
  • , Sam Peters
  • , Srikanth Kamath
  • , Jerry Yang
  • , Ying Zhang
  • Meta
  • Johns Hopkins University
  • Harvard University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

9 Scopus citations

Abstract

Advancements in Large Language Models (LLMs) are significantly transforming network management practices. In this paper, we present our experience developing Confucius, a multi-agent framework for network management at Meta. We model network management workflows as directed acyclic graphs (DAGs) to aid planning. Our framework integrates LLMs with existing management tools to achieve seamless operational integration, employs retrieval-augmented generation (RAG) to improve long-term memory, and establishes a set of primitives to systematically support human/model interaction. To ensure the accuracy of critical network operations, Confucius closely integrates with existing network validation methods and incorporates its own validation framework to prevent regressions. Remarkably, Confucius is a production-ready LLM development framework that has been operational for two years, with over 60 applications onboarded. To our knowledge, this is the first report on employing multi-agent LLMs for hyper-scale networks.

Original languageEnglish
Title of host publicationSIGCOMM 2025 - ACM SIGCOMM 2025 Conference
PublisherAssociation for Computing Machinery, Inc
Pages347-362
Number of pages16
ISBN (Electronic)9798400715242
DOIs
StatePublished - Aug 27 2025
EventACM SIGCOMM 2025 Conference, SIGCOMM 2025 - Coimbra, Portugal
Duration: Sep 8 2025Sep 11 2025

Publication series

NameSIGCOMM 2025 - ACM SIGCOMM 2025 Conference

Conference

ConferenceACM SIGCOMM 2025 Conference, SIGCOMM 2025
Country/TerritoryPortugal
CityCoimbra
Period09/8/2509/11/25

Keywords

  • Large Language Models (LLMs)
  • Network Planning
  • RAG

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