Localized Dimension Growth in Random Network Coding: A Convolutional Approach

被引:0
|
作者
Guo, Wangmei [1 ]
Cai, Ning [1 ]
Shi, Xiaomeng [2 ]
Medard, Muriel [2 ]
机构
[1] Xidian Univ, State Key Lab ISN, Xian, Peoples R China
[2] MIT, Res Lab Elect, Cambridge, MA 02139 USA
基金
中国国家自然科学基金; 加拿大自然科学与工程研究理事会;
关键词
convolutional network code; random linear network code; adaptive random convolutional network code; combination networks;
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
We propose an efficient Adaptive Random Convolutional Network Coding (ARCNC) algorithm to address the issue of field size in random network coding. ARCNC operates as a convolutional code, with the coefficients of local encoding kernels chosen randomly over a small finite field. The lengths of local encoding kernels increase with time until the global encoding kernel matrices at related sink nodes all have full rank. Instead of estimating the necessary field size a priori, ARCNC operates in a small finite field. It adapts to unknown network topologies without prior knowledge, by locally incrementing the dimensionality of the convolutional code. Because convolutional codes of different constraint lengths can coexist in different portions of the network, reductions in decoding delay and memory overheads can be achieved with ARCNC. We show through analysis that this method performs no worse than random linear network codes in general networks, and can provide significant gains in terms of average decoding delay in combination networks.
引用
收藏
页码:1156 / 1160
页数:5
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