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Spatial Statistical Modeling for Heterogeneous Cellular Networks - An Empirical Study

机译:异构细胞网络的空间统计建模-实证研究

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Modeling the spatial distribution of multi-tier base stations (BSs) is an important issue for understanding and validating the analysis and design of heterogeneous cellular networks (HCNs). In this paper, we use different spatial statistical models to describe the spatial distribution of BSs, by fitting real data sets of BS locations in HCNs. Classical statistics like the L function, and cellular network performance metrics like the coverage probability are used to evaluate the goodness-of-fit. The results reveal that notable distinctions exist between modeling HCNs and single-tier networks. Although each tier in a HCN may be most accurately fitted by statistical models other than the Poisson spatial distribution, it is surprising that multiple tiers of independent Poisson spatial distributions provide an accurate description of the overall HCN. The impacts of different network parameters and the dependency between tiers on the modeling accuracy are extensively investigated.
机译:对多层基站(BS)的空间分布进行建模是理解和验证异构蜂窝网络(HCN)的分析和设计的重要问题。在本文中,我们通过拟合HCN中BS位置的真实数据集,使用不同的空间统计模型来描述BS的空间分布。诸如L函数之类的经典统计数据,以及诸如覆盖率之类的蜂窝网络性能指标,都被用来评估拟合优度。结果表明,在建模HCN和单层网络之间存在显着区别。尽管HCN中的每一层都可以通过除Poisson空间分布之外的统计模型最精确地拟合,但是令人惊讶的是,多层独立的Poisson空间分布提供了整个HCN的准确描述。广泛研究了不同网络参数的影响以及层之间的依赖性对建模准确性的影响。

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