计算机科学 ›› 2026, Vol. 53 ›› Issue (6A): 260300153-9.doi: 10.11896/jsjkx.260300153

• 网络&通信 • 上一篇    

面向空间通信的标识驱动型计算-存储-转发融合机制

蔡和倬1, 孙涛1, 胡陈晗1, 孙嘉楠2, 刘杨3, 姜阳毅1, 郑涛1   

  1. 1 北京交通大学电子信息工程学院 北京 100044
    2 中国科学院计算机网络信息中心 北京 100083
    3 北京航天万达高科技有限公司 北京 100089
  • 出版日期:2026-06-16 发布日期:2026-06-12
  • 通讯作者: 郑涛(zhengtao@bjtu.edu.cn)
  • 作者简介:(23211119@bjtu.edu.cn)
  • 基金资助:
    “北京市无人机虚实结合概念验证平台”建设项目(20250481284)

Identifier-driven Computing-Storage-Forwarding Convergence Mechanism for Space Communications

CAI Hezhuo1, SUN Tao1, HU Chenhan1, SUN Jianan2, LIU Yang3, JIANG Yangyi1 , ZHENG Tao1   

  1. 1 School of Electronic and Information Engineering,Beijing Jiaotong University,Beijing 100044,China
    2 Computer Network Information Center,Chinese Academy of Sciences,Beijing 100083,China
    3 Beijing Aerospace Wanda High-Tech Co.,Ltd.,Beijing 100089,China
  • Published:2026-06-16 Online:2026-06-12
  • About author:CAI Hezhuo,born in 2005,undergra-duate.His main research interest is mobile dedicated network data transmission technology.
    ZHENG Tao,born in 1983,Ph.D,asso-ciate professor.His main research in-terest is high-reliability collaborative transmission for mobile dedicated networks.
  • Supported by:
    “Beijing UAV Virtual-Real Integrated Proof-of-Concept Platform” Construction Project(20250481284).

摘要: 随着空间通信在低空智联网、星际互联网等领域的拓展,传统互联网难以应对节点高度动态与拓扑结构时变的挑战。针对此问题,提出一种基于标识的计算-存储-转发融合机制,构建面向空间通信的异构融合网络架构。该机制以标识体系为核心,建立束标识、网络功能标识、组件标识、族群标识与终端标识的多层映射关系,实现异构网络资源的统一调度与智能解析。在此基础上,设计涵盖束群业务层、汇聚适配层与网络组件层的三层融合架构,结合存储转发策略与分布式组网方法,完成了分布式移动网络的原型系统开发。实验结果表明,该机制在移动环境下可有效降低 35% 以上的平均传输时延,显著增强了系统的稳健性与通信资源利用效率。上述工作证实了基于标识的异构融合机制在应对高动态网络拓扑时的有效性,为构建具备标识智能调度能力的空间通信系统提供了可行的技术路径。

关键词: 算网融合, 空间通信, 低空经济, 分布式网络, 异构网络融合, 协同传输

Abstract: With the rapid advancement of space communication technologies in emerging fields such as low-altitude intelligent networks,interplanetary Internet,and satellite-terrestrial integrated systems,traditional network architectures designed for relatively static terrestrial environments are increasingly inadequate. These conventional architectures face significant challenges in coping with highly dynamic node mobility,frequent topology changes. To address these fundamental limitations,this paper proposes a novel identifier-based computing-storage-forwarding convergence mechanism and constructs a heterogeneous converged network architecture tailored for space communication. The proposed mechanism centers around a unified identifier system that establishes multi-layer mapping relationships among identifier types,including bundle identifiers,network function identifiers,component identifiers,group identifiers,and terminal identifiers. This multi-layer mapping decouples network services from underlying hardware,facilitates unified scheduling of heterogeneous network resources,and supports intelligent resolution of service demands across diverse network domains. On this basis,a three-layer converged architecture is designed,comprising the bundle service layer,the convergence adaptation layer,and the network component layer. By integrating store-and-forward strategies with distributed networking methods,the architecture mitigates the effects of intermittent links and long propagation delays typical of space environments. Furthermore,a distributed mobile network prototype is developed to validate the proposed architecture and mechanisms. Experimental results demonstrate that the proposed mechanism reduces average transmission latency by over 35% versus conventional approaches under mobile conditions. In addition,the system shows significantly enhanced robustness against link disruptions and improved communication resource utilization efficiency. These findings confirm the effectiveness and feasibility of the identifier-based heterogeneous convergence mechanism in addressing highly dynamic network topologies,providing a viable technical pathway for developing future space communication systems with identifier-driven intelligent scheduling capabilities.

Key words: Computing and network convergence, Space communications, Low-altitude economy, Distributed networks, Heterogeneous network convergence, Cooperative transmission

中图分类号: 

  • TP393
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