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Radio Environment Map Estimation Based on Communication Cost Modeling for Heterogeneous Networks

机译:基于通信成本建模的异构网络无线电环境图估计

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Radio environment maps can be a powerful tool for achieving efficient context-aware resource allocation in 5G heterogeneous networks. In this paper, we consider an heterogeneous network formed by a traditional cellular network and a wireless sensor network. The role of the wireless sensor network is to estimate the radio environment map of the cell using a geostatistical interpolation technique named Kriging. A distributed clustering algorithm was proposed in a previous work in order to decrease the complexity of the estimation. In our contribution, the clustering formation process is modified to include the communication cost as a metric to determine which nodes are included in each cluster. Simulation results show that the proposed algorithm improves the estimation quality for sparse wireless sensor networks, and preserves the network lifetime by forming clusters with an average of 5 nodes.
机译:无线电环境地图可以成为在5G异构网络中实现有效的上下文感知资源分配的强大工具。在本文中,我们考虑了由传统的蜂窝网络和无线传感器网络组成的异构网络。无线传感器网络的作用是使用称为Kriging的地统计插值技术来估计小区的无线电环境图。在先前的工作中提出了一种分布式聚类算法,以降低估计的复杂度。在我们的贡献中,对集群形成过程进行了修改,以将通信成本作为度量标准来确定每个集群中包括哪些节点。仿真结果表明,该算法提高了稀疏无线传感器网络的估计质量,并通过形成平均5个节点的簇来保持网络寿命。

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