拓扑约束下的最大恢复网络编码

K. Misra, Shirish S. Karande, H. Radha
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引用次数: 4

摘要

近年来的研究表明,信道码可以映射到网络上,从而实现高效的网络编码(NC);这导致了网络图上代码(CNG)的出现。传统的CNG方法(例如去中心化Erasure Codes)侧重于从给定的输入源(大小为K)生成一系列编码符号,这样,原始符号可以从大小等于或略大于k的编码符号的任何子集中恢复。然而,在所有情况下,如果接收到的编码符号数量低于k,则恢复的源符号数量迅速下降。本文确定了CNG代码集成(在统计拓扑约束下),使WSN源数据的恢复最大(对于不同的擦除率),从而使数据恢复的恶化最小化。我们还对底层LDPC代码集进行了不动点稳定性分析。然后,我们提出了一种分布式算法,用于生成符合设计代码集合的编码符号序列。利用差分进化算法确定了具有1000个节点的传感器网络的最优解,并评估了解决方案对传感器节点数量和节点互联性方差的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maximal Recovery Network Coding under Topology Constraint
Recent advances have shown that channel codes can be mapped onto networks to realize efficient Network Coding (NC); this has led to the emergence of Code-on-Network-Graphs (CNG). Traditional CNG approaches (e.g Decentralized Erasure Codes) focus on a generating a sequence of encoded symbols from a given input source (of size K), such that the original symbols can be recovered from any subset of the encoded symbols of size equal to or slightly larger than K. However in all cases the number of source symbols recovered falls rapidly if the number of encoded symbols received falls below K. In this paper we determine the CNG code-ensembles (under statistical toplogy constraint) which result in maximal recovery of WSN source data (for different erasure-rates), thereby minimizing the deterioration in data recovery. We also perform fixed point stability analysis on the underlying LDPC code ensemble. We then propose a distributed algorithm for generating a sequence of encoded symbols adhering to the designed code ensemble. Optimal solutions for a sensor network with 1000 nodes is determined using the Differential Evolution algorithm, and the solution sensitivity to variance in number of sensor nodes and node-interconnectivity is evaluated.
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