SINR and Throughput Scaling in Ultradense Urban Cellular Networks
Abstract
We consider a dense urban cellular network where the base stations (BSs) are stacked vertically as well as extending infinitely in the horizontal plane, resulting in a greater than two dimensional (2D) deployment. Using a dual-slope path loss model that is well supported empirically, we extend recent 2D coverage probability and potential throughput results to 3 dimensions. We prove that the "critical close-in path loss exponent" where SINR eventually decays to zero is equal to the dimensionality , i.e. results in an eventual SINR of 0 in a 3D network. We also show that the potential (i.e. best case) aggregate throughput decays to zero for . Both of these scaling results also hold for the more realistic case that we term , where there are no BSs below the user, as in a dense urban network with the user on or near the ground.
Cite
@article{arxiv.1507.00701,
title = {SINR and Throughput Scaling in Ultradense Urban Cellular Networks},
author = {Abhishek K. Gupta and Xinchen Zhang and Jeffrey G. Andrews},
journal= {arXiv preprint arXiv:1507.00701},
year = {2015}
}