1.北京邮电大学信息与通信工程学院,北京 100876
2.咪咕文化科技有限公司,北京 100043
[ "朱龙薇(2001- ),女,北京邮电大学信息与通信工程学院硕士生,主要研究方向为信息与通信工程。" ]
[ "蒋胜(1978- ),男,博士,北京邮电大学信息与通信工程学院教授,主要研究方向为6G、智简网络、计算机网络(数据通信网络)、互联网协议(TCP/IP)创新及相关国际国内标准等。" ]
[ "饶明佺(1979- ),男,咪咕文化科技有限公司高级工程师,主要研究方向为大规模互联网平台系统、低时延流媒体传输、音视频实时互动等。" ]
[ "顾明(1983- ),男,咪咕文化科技有限公司平台运营技术中心副总经理,主要研究方向为大型互联网分布式系统、音视频传输、大数据、安全风控等。" ]
收稿:2025-05-22,
修回:2025-06-15,
录用:2025-06-19,
纸质出版:2025-12-20
移动端阅览
朱龙薇,蒋胜,饶明佺等.端网协同的传输层自适应创新框架设计[J].电信科学,2025,41(12):89-99.
ZHU Longwei,JIANG Sheng,RAO Mingquan,et al.End-network-collaborative and self-adaptive optimization for transport layer[J].Telecommunications Science,2025,41(12):89-99.
朱龙薇,蒋胜,饶明佺等.端网协同的传输层自适应创新框架设计[J].电信科学,2025,41(12):89-99. DOI: 10.11959/j.issn.1000-0801.2025218.
ZHU Longwei,JIANG Sheng,RAO Mingquan,et al.End-network-collaborative and self-adaptive optimization for transport layer[J].Telecommunications Science,2025,41(12):89-99. DOI: 10.11959/j.issn.1000-0801.2025218.
在现有分层网络体系结构下,传输层只能通过层间接口为上层应用提供无差别的端到端传输服务,缺乏根据应用传输需求和网络状态进行自主调整的能力。为此,以提高端侧传输层对网络和应用传输需求的感知与协同能力为目标,聚焦面向全场景的通用传输层自适应优化设计,使传输层能够提供灵活、高质量的传输服务。讨论了传输层在感知应用传输需求和网络状态方面的能力拓展途径,并在此基础上提出一种创新的端网协同传输层自适应框架。该框架具备根据应用传输需求和网络状态进行自适应协议选择与配置的能力,可增强传输层在复杂应用场景和异构网络环境下的灵活适配性,更好地适应并推动新一代通信系统和网络的发展。
Under the existing layered network architecture
the transport layer is only able to provide undifferentiated end-to-end transmission services to upper-layer applications through inter-layer interfaces
lacking the capability to autonomously adjust according to application requirements and network conditions. To address this
the focus is on the adaptive optimization design of the transport layer for full-scenario applications
with the goal of enhancing the perception and coordination capabilities toward network and application transmission demands
was conducted
enabling the transport layer to provide more flexible and high-quality transmission services. Approaches for extending the transport layer’s ability to perceive application transmission requirements and network status were discussed. Based on this
an innovative adaptive transport layer framework with end-to-network coordination capability was proposed. This framework was designed to adaptively select and configure protocols based on application transmission needs and real-time network conditions
thereby improving the transport layer’s flexibility and adaptability in complex application scenarios and heterogeneous network environments. Ultimately
it was intended to better support and promote the development of new-generation communication systems and networks.
IETF . User datagram protocol: RFC 768 [S ] . 1980 .
IETF . Transmission control protocol (TCP): RFC 9293 [S ] . 2022 .
IETF . Datagram congestion control protocol (DCCP): RFC 4340 [S ] . 2006 .
IETF . Stream Control Transmission Protocol: RFC 9260 [S ] . 2022 .
IETF . QUIC: a UDP-based multiplexed and secure transport: RFC 9000 [S ] . 2021 .
SHI H , CUI Y , QIAN F , et al . DTP: deadline-aware transport protocol [C ] // Proceedings of the 3rd Asia-Pacific Workshop on Networking . New York : ACM , 2019 , 1 - 7 .
ZUO X T , CUI Y , WANG X , et al . Deadline-aware multipath transmission for streaming blocks [C ] // Proceedings of the IEEE INFOCOM 2022 - IEEE Conference on Computer Communications . Piscataway : IEEE Press , 2022 : 2178 - 2187 .
SCHMIDT P S , ENGHARDT T , KHALILI R , et al . Socket intents: leveraging application awareness for multi-access connectivity [C ] // Proceedings of the Ninth ACM Conference on Emerging Networking Experiments and Technologies . New York : ACM , 2013 : 295 - 300 .
BAO Z C , LIANG H T , DONG C , et al . MDVSC - efficient wireless model division video semantic communication [J ] . IEEE Internet of Things Journal , 2025 , 12 ( 2 ): 1109 - 1124 .
IETF . The addition of explicit congestion notification (ECN) to IP: RFC 3168 [S ] . 2001 .
IETF . Low latency, low loss, and scalable throughput (L4S) Internet service: Architecture: RFC 9330 [S ] . 2023 .
MENG Z L , GUO Y N , SUN C , et al . Achieving consistent low latency for wireless real-time communications with the shortest control loop [C ] // Proceedings of the ACM SIGCOMM 2022 Conference . New York : ACM , 2022 : 193 - 206 . [LinkOut ]
LIM Y S , CHEN Y C , NAHUM E M , et al . Cross-layer path management in multi-path transport protocol for mobile devices [C ] // Proceedings of the IEEE INFOCOM 2014 - IEEE Conference on Computer Communications . Piscataway : IEEE Press , 2014 : 1815 - 1823 .
SINKY H , HAMDAOUI B , GUIZANI M . Proactive multipath TCP for seamless handoff in heterogeneous wireless access networks [J ] . IEEE Transactions on Wireless Communications , 2016 , 15 ( 7 ): 4754 - 4764 .
ZHANG X F , NGUYEN T M T . Concurrent multipath transfer performance optimization using Kalman filter based predictive delay estimation in wireless networks [C ] // Proceedings of the Global Information Infrastructure Symposium - GIIS 2011 . Piscataway : IEEE Press , 2011 : 1 - 5 .
IEEE . IEEE standard for information technology--telecommunications and information exchange between systems - local and metropolitan area networks--specific requirements - part 11: wireless lan medium access control (MAC) and physical layer (PHY) specifications: IEEE 802.11-2020 [S ] . 2020 .
KUMAR P , DEZFOULI B . Implementation and analysis of QUIC for MQTT [J ] . Computer Networks , 2019 , 150 : 28 - 45 .
LANGLEY A , RIDDOCH A , WILK A , et al . The QUIC transport protocol: design and Internet-scale deployment [C ] // Proceedings of the Conference of the ACM Special Interest Group on Data Communication . New York : ACM , 2017 : 183 - 196 .
ZHOU J E , QIU X Y , LI Z Y , et al . A machine learning-based framework for dynamic selection of congestion control algorithms [J ] . IEEE/ACM Transactions on Networking , 2023 , 31 ( 4 ): 1566 - 1581 .
郑卫凯 , 黄金强 . 媒体流传输方法、装置、设备及介质 : CN112995182A [P ] . 2021-06-18 .
ZHENG W K , HUANG J Q . Media stream transmission method and device, equipment and medium : CN112995182A [P ] . 2021-06-18 .
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