Coverage and Rate Analysis of Downlink Cellular Vehicle-to-Everything (C-V2X) Communication

01/26/2019
by   Vishnu Vardhan Chetlur, et al.
0

In this paper, we present the downlink coverage and rate analysis of a cellular vehicle-to-everything (C-V2X) communication network where the locations of vehicular nodes and road side units (RSUs) are modeled as Cox processes driven by a Poisson line process (PLP) and the locations of cellular macro base stations (MBSs) are modeled as a 2D Poisson point process (PPP). Assuming a fixed selection bias and maximum average received power based association, we compute the probability with which a typical receiver, an arbitrarily chosen receiving node, connects to a vehicular node or an RSU and a cellular MBS. For this setup, we derive the signal-to-interference ratio (SIR)-based coverage probability of the typical receiver. One of the key challenges in the computation of coverage probability stems from the inclusion of shadowing effects. As the standard procedure of interpreting the shadowing effects as random displacement of the location of nodes is not directly applicable to the Cox process, we propose an approximation of the spatial model inspired by the asymptotic behavior of the Cox process. Using this asymptotic characterization, we derive the coverage probability in terms of the Laplace transform of interference power distribution. Further, we compute the downlink rate coverage of the typical receiver by characterizing the load on the serving vehicular nodes or RSUs and serving MBSs. We also provide several key design insights by studying the trends in the coverage probability and rate coverage as a function of network parameters. We observe that the improvement in rate coverage obtained by increasing the density of MBSs can be equivalently achieved by tuning the selection bias appropriately without the need to deploy additional MBSs.

READ FULL TEXT

page 1

page 2

page 3

page 4

research
08/04/2020

On the Load Distribution of Vehicular Users Modeled by a Poisson Line Cox Process

In this letter, we characterize the load on the cellular macro base stat...
research
09/30/2020

Physical Layer Security Enhancement Using Artificial Noise in Cellular Vehicle-to-Everything (C-V2X) Networks

The secure transmission of confidential information in cellular vehicle-...
research
04/26/2022

Modeling and Analysis of 2-Tier Heterogeneous Vehicular Networks Leveraging Roadside Units and Vehicle Relays

While roadside units (RSUs) play an essential role in vehicle-to-everyth...
research
04/26/2018

Success Probability and Area Spectral Efficiency of a VANET Modeled as a Cox Process

This paper analyzes the performance of a vehicular ad hoc network (VANET...
research
04/12/2018

On the Spatial Performance of Users in Indoor VLC Networks with Multiple Reflections

In this paper, we present a stochastic geometry based framework to analy...
research
05/02/2019

3GPP-inspired Stochastic Geometry-based Mobility Model for a Drone Cellular Network

This paper deals with the stochastic geometry-based characterization of ...
research
07/11/2019

Coverage Probability Analysis Under Clustered Ambient Backscatter Nodes

In this paper, we consider a new large-scale communication scheme where ...

Please sign up or login with your details

Forgot password? Click here to reset