论文标题
基于随机几何分析LEO卫星通信系统
Stochastic Geometry-based Analysis of LEO Satellite Communication Systems
论文作者
论文摘要
这封信研究了低地球轨道(LEO)卫星通信系统的性能,其中将LEO卫星的位置建模为球形表面上的二项点过程(BPP)。特别是,我们研究了将卫星网关(GWS)部署在地面上的场景中的用户覆盖概率,以充当用户和LEO卫星之间的继电器。我们使用从随机几何形状中的工具来得出所述设置的覆盖范围概率,假设LEO卫星放置在n个不同的高度,因为每个高度AK的卫星数量均为所有K。为了类似于卫星通信可以在覆盖范围增强中发挥重要作用的实用场景,我们将所考虑的设置的性能与场景进行比较,在这种情况下,用户仅被纤维连接的基站(称为锚固基站或纸张中的ABS)(在其余纸张中被称为较远的距离),这在农村和遥远的地区是一个相对距离的挑战。使用数值结果,我们在采用LEO卫星通信系统时在农村和偏远地区显示了绩效增长。最后,我们对超越ABS所需的GW的密度以及LEO卫星的数量及其高度提出了多个系统级别的见解。
This letter studies the performance of a low-earth orbit (LEO) satellite communication system where the locations of the LEO satellites are modeled as a binomial point process (BPP) on a spherical surface. In particular, we study the user coverage probability for a scenario where satellite gateways (GWs) are deployed on the ground to act as a relay between the users and the LEO satellites. We use tools from stochastic geometry to derive the coverage probability for the described setup assuming that LEO satellites are placed at n different altitudes, given that the number of satellites at each altitude ak is Nk for all k. To resemble practical scenarios where satellite communication can play an important role in coverage enhancement, we compare the performance of the considered setup with a scenario where the users are solely covered by a fiber-connected base station (referred to as anchored base station or ABS in the rest of the paper) at a relatively far distance, which is a common challenge in rural and remote areas. Using numerical results, we show the performance gain, in terms of coverage probability, at rural and remote areas when LEO satellite communication systems are adopted. Finally, we draw multiple system-level insights regarding the density of GWs required to outperform the ABS, as well as the number of LEO satellites and their altitudes.