Adaptive local routing strategy on a scale-free network

被引:0
作者
刘锋 [1 ]
赵寒 [1 ]
李明 [1 ]
任丰原 [2 ]
朱衍波 [1 ]
机构
[1] School of Electronics and Information Engineering,Beihang University
[2] Department of Computer Science and Technology,Tsinghua University
基金
中国国家自然科学基金;
关键词
local routing; scale-free networks; preferential probability; traffic load;
D O I
暂无
中图分类号
O157.5 [图论];
学科分类号
070104 ;
摘要
Due to the heterogeneity of the structure on a scale-free network,making the betweennesses of all nodes become homogeneous by reassigning the weights of nodes or edges is very difficult.In order to take advantage of the important effect of high degree nodes on the shortest path communication and preferentially deliver packets by them to increase the probability to destination,an adaptive local routing strategy on a scale-free network is proposed,in which the node adjusts the forwarding probability with the dynamical traffic load(packet queue length) and the degree distribution of neighbouring nodes.The critical queue length of a node is set to be proportional to its degree,and the node with high degree has a larger critical queue length to store and forward more packets.When the queue length of a high degree node is shorter than its critical queue length,it has a higher probability to forward packets.After higher degree nodes are saturated(whose queue lengths are longer than their critical queue lengths),more packets will be delivered by the lower degree nodes around them.The adaptive local routing strategy increases the probability of a packet finding its destination quickly,and improves the transmission capacity on the scale-free network by reducing routing hops.The simulation results show that the transmission capacity of the adaptive local routing strategy is larger than that of three previous local routing strategies.
引用
收藏
页码:161 / 169
页数:9
相关论文
共 14 条
  • [1] H. Jeong,S.P. Mason,A.L. Barabasi. Nature (Lon-don) . 2001
  • [2] Random Walks:Random Walks and Random Environments. Hughes R D. . 1995
  • [3] Tadi B,Thurner S,Rodgers G J. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2004
  • [4] Tadi B,Thurner S. Physical Review A Atomic Molecular and Optical Physics . 2005
  • [5] Yan G,Zhou T,Fu Z Q,Wang B H. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2006
  • [6] Wang W X,Wang B H,Yin C Y,Xie Y B,Zhou T. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2006
  • [7] Communication in Networks with Hierarchical Branching. A.Arenas,A.Diaz-Guilera,R.Guimera. Physics Review Letters . 2001
  • [8] Guimera R,Arenas A,Guilera A D,Giralt F. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2002
  • [9] Kim B J,Yoon C N,Han S K,Jeong H. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2002
  • [10] Adamic L A,Lukose R M,Puniyani A R,Huberman B A. Physical Review E Statistical Nonlinear and Soft Matter Physics . 2001