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首页> 外文期刊>Vehicular Technology, IEEE Transactions on >Distributed Data Aggregation Using Slepian–Wolf Coding in Cluster-Based Wireless Sensor Networks
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Distributed Data Aggregation Using Slepian–Wolf Coding in Cluster-Based Wireless Sensor Networks

机译:基于集群的无线传感器网络中使用Sleepian-Wolf编码的分布式数据聚合

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In this paper, we study the major problems in applying Slepian–Wolf coding for data aggregation in cluster-based wireless sensor networks (WSNs). We first consider the clustered Slepian–Wolf coding (CSWC) problem, which aims at selecting a set of disjoint potential clusters to cover the whole network such that the global compression gain of Slepian–Wolf coding is maximized, and propose a distributed optimal-compression clustering (DOC) protocol to solve the problem. Under a cluster hierarchy constructed by the DOC protocol, we then consider the optimal intracluster rate-allocation problem. We prove that there exists an optimization algorithm that can find an optimal rate allocation within each cluster to minimize the intracluster communication cost and present an intracluster coding protocol to locally perform Slepian–Wolf coding within a single cluster. Furthermore, we propose a low-complexity joint-coding scheme that combines CSWC with intercluster explicit entropy coding to further reduce data redundancy caused by the possible spatial correlation between different clusters.
机译:在本文中,我们研究了在基于集群的无线传感器网络(WSN)中应用Slepian-Wolf编码进行数据聚合的主要问题。我们首先考虑聚类的Slepian-Wolf编码(CSWC)问题,该问题旨在选择一组不相交的潜在簇来覆盖整个网络,从而使Slepian-Wolf编码的全局压缩增益最大化,并提出分布式最优压缩群集(DOC)协议即可解决该问题。在由DOC协议构造的集群层次结构下,我们考虑了最佳集群内速率分配问题。我们证明了存在一种优化算法,可以在每个群集中找到最佳速率分配以最小化群集内通信成本,并提出群集内编码协议以在单个群集内本地执行Slepian-Wolf编码。此外,我们提出了一种低复杂度联合编码方案,该方案将CSWC与集群间显式熵编码相结合,以进一步减少由于不同聚类之间可能存在的空间相关性而导致的数据冗余。

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