arXiv:2501.07992cs.AIcs.ET2025-01被引 2

用大模型增强的分层架构,让复杂系统自适应重组

LLM-Ehnanced Holonic Architecture for Ad-Hoc Scalable SoS

  • 分层设计使异构系统间数据互通更顺畅
  • 引入四类专用智能体,支持实时动态调整
  • 适合智能城市等复杂系统的快速部署

随着现代系统体系(SoS)日益具备自适应性和以人为本特性,传统架构在互操作性、可重构性及人机协同方面面临挑战。本文推进了面向SoS的全息架构,提出两项核心贡献:首先,构建包含推理、通信与能力三层的全息体分层架构,通过提升数据交换与集成能力,实现异构子系统间的无缝互操作;其次,借鉴智能制造理念,引入监督、规划、任务和资源四类专用全息体,其推理层融合大语言模型,支持决策制定并保障实时自适应能力。通过聚焦智慧城市交通的三维移动性案例研究,验证了该架构在管理复杂多模式SoS环境中的潜力。此外,提出了评估方法以衡量架构的效率与可扩展性,为后续仿真与实际应用的实证验证奠定基础。

原文摘要 · Abstract (English)

As modern system of systems (SoS) become increasingly adaptive and human centred, traditional architectures often struggle to support interoperability, reconfigurability, and effective human system interaction. This paper addresses these challenges by advancing the state of the art holonic architecture for SoS, offering two main contributions to support these adaptive needs. First, we propose a layered architecture for holons, which includes reasoning, communication, and capabilities layers. This design facilitates seamless interoperability among heterogeneous constituent systems by improving data exchange and integration. Second, inspired by principles of intelligent manufacturing, we introduce specialised holons namely, supervisor, planner, task, and resource holons aimed at enhancing the adaptability and reconfigurability of SoS. These specialised holons utilise large language models within their reasoning layers to support decision making and ensure real time adaptability. We demonstrate our approach through a 3D mobility case study focused on smart city transportation, showcasing its potential for managing complex, multimodal SoS environments. Additionally, we propose evaluation methods to assess the architecture efficiency and scalability,laying the groundwork for future empirical validations through simulations and real world implementations.

系统架构大模型应用智能城市

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