1. 西安交通大学计算机科学与技术系,西安,710049
2. 西安交通大学智能网络与网络安全教育部重点实验室,西安,710049
纸质出版:2010
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姜山 1, 郑庆华 1, 2, 等. 一种支持大规模应用层组播的混合拓扑覆盖网络[J]. 西安交通大学学报, 2010,44(2):11-14+30.
A Hybrid-Topology Overlay Network for Supporting Large-Scale Application-Level Multicast[J]. 2010, 44(2): 11-14+30.
提出一种支持大规模应用层组播的混合拓扑覆盖网络——H-ALM.将传输覆盖网络分为主干层和分支层
主干层采用树状结构
分支层采用网状结构.H-ALM克服了单一树状结构传输稳定性差和单一网状结构传输延迟大的不足
同时综合考虑节点规模、节点的带宽能力、节点累计转发和接收数据量等实时的状态和网络条件
从而进一步优化了混合式传输覆盖网络.实验表明
H-ALM比树状方法更稳定
比网状方法延迟更小.
A hybrid-topology overlay network for large-scale application-level multicast-H-ALM is proposed. The overlay network is divided into two tiers by H-ALM. One is the backbone layer that has a tree-based topology; and the other is the branch layer that has a mesh-based topology. It is known that the stability of the pure tree-based topology is not good enough for distributing streaming data; and stream delivery over the pure mesh-based topology suffers from high delay yet. The H-ALM overcomes these shortcomings by combining the merits of the tree-based topology and the mesh-based topology
and optimizes the two-tier hybrid overlay network by considering the real-time status and network conditions such as the scale of the overlay
bandwidth capacity of nodes
the cumulative data traffic that each node relayed and received and so on. Therefore
the performance of stability and communication delay of distributing streaming data are improved. Experimental results show that the H-ALM achieves better stability than the tree-based overlay and lower transmission delay than the mesh-based overlay.
HOSSEINI M, GEORGANAS N D. End system multicast routing for multi-party videoconferencing applications [J]. Computer Communications, 2006, 29(11): 2046-2065.
CAO Jia, LU Shiwen. A minimum delay spanning tree algorithm for the application-layer multicast [J].Journal of Software, 2005, 16(10):1767-1773.
TRAN D A, HUA K A, ZIGZAG T D. An efficient peer-to-peer scheme for media streaming[C]∥ Proceedings of IEEE INFOCOM. Piscataway, NJ, USA: IEEE, 2003: 1283-1292.
REJAIE R, STAFFORD S. A framework for architecting peer-to-peer receiver-driven overlays[C]∥Network and Operating Systems Support for Digital Audio and Video. New York, USA: ACM, 2004: 42-47.
ZHANG Xinyan, LIU Jiangchuan, LI Bo, et al. CoolStreaming/DONet: a data-driven overlay network for live media streaming [C]∥Proceedings of IEEE INFOCOM. Piscataway, NJ, USA: IEEE, 2005: 2102-2111.
LUO Jianguang, ZHANG Meng, ZHAO Li, et al. A large-scale live video streaming system based on P2P networks [J]. Journal of Software, 2007, 18(2): 391-399.
MAGHAREI N, REJAIE R, GUO Y. Mesh or multiple-tree: comparative study of P2P live streaming services [C]∥ Proceedings of IEEE INFOCOM. Piscataway, NJ, USA: IEEE, 2007: 1424-1432.
HEI Xiaojun, CHAO Liang, LIANG Jian, et al. A measurement study of a large-scale P2P IPTV system [J]. IEEE Trans on Multimedia, 2006, 9(8):1672-1687.
LIU Yong, GUO Yang, LIANG Chao. A survey on peer-to-peer video streaming systems [J]. Peer-to-Peer Networking and Applications, 2008, 1(1): 18-28.
FRONCZAK A, FRONCZAK P, JANUSZ A. Holyst: average path length in random networks [J]. Physical Review E: Statistical, Nonlinear, and Soft Matter Physics, 2004, 70: 1-7.
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