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Exact Performance Analysis of Ambient RF Energy Harvesting Wireless Sensor Networks With Ginibre Point Process

机译:使用Ginibre点过程的环境射频能量收集无线传感器网络的精确性能分析

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Ambient radio frequency (RF) energy harvesting methods have drawn significant interests due to their ability to provide energy to wireless devices from ambient RF sources. This paper considers ambient RF energy harvesting wireless sensor networks where a sensor node transmits data to a data sink using the energy harvested from the signals transmitted by the ambient RF sources. We analyze the performance of the network, i.e., the mean of the harvested energy, the power outage probability, and the transmission outage probability. In many practical networks, the locations of the ambient RF sources are spatially correlated and the ambient sources exhibit repulsive behaviors. Therefore, we model the spatial distribution of the ambient sources as an α-Ginibre point process (α-GPP), which reflects the repulsion among the RF sources and includes the Poisson point process as a special case. We also assume that the fading channel is Nakagami-m distributed, which also includes Rayleigh fading as a particular case. In this paper, by exploiting the Laplace transform of the α-GPP, we introduce semi-closed-form expressions for the considered performance metrics and provide an upper bound of the power outage probability. The derived expressions are expressed in terms of the Fredholm determinant, which can be computed numerically. In order to reduce the complexity in computing the Fredholm determinant, we provide a simple closed-form expression for the Fredholm determinant, which allows us to evaluate the Fredholm determinant much more efficiently. The accuracy of our analytical results is validated through simulation results.
机译:由于环境射频(RF)能量收集方法能够从周围的RF源向无线设备提供能量,因此引起了广泛的关注。本文考虑了环境射频能量收集无线传感器网络,其中传感器节点使用从环境射频源传输的信号中收集的能量将数据传输到数据接收器。我们分析网络的性能,即所收集能量的平均值,停电概率和传输中断概率。在许多实际网络中,环境RF源的位置在空间上相关,并且环境源表现出排斥行为。因此,我们将环境源的空间分布建模为α-吉尼布雷点过程(α-GPP),该过程反映了RF源之间的排斥力,并且将泊松点过程作为一种特殊情况。我们还假设衰落信道是Nakagami-m分布的,在特殊情况下还包括瑞利衰落。在本文中,通过利用α-GPP的拉普拉斯变换,我们为考虑的性能指标引入了半封闭形式的表达式,并提供了断电概率的上限。导出的表达式以Fredholm行列式表示,可以通过数值计算。为了减少计算Fredholm行列式的复杂性,我们为Fredholm行列式提供了一个简单的封闭式表达式,这使我们能够更有效地评估Fredholm行列式。我们的分析结果的准确性通过仿真结果得到验证。

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