Achieve faster and more efficient network design and optimization with this comprehensive guide. Some of the most prominent researchers in the field explain the very latest analytic techniques and results from stochastic geometry for modelling the signal-to-interference-plus-noise ratio (SINR) distribution in heterogeneous cellular networks. This book will help readers to understand the effects of combining different system deployment parameters on key performance indicators such as coverage and capacity, enabling the efficient allocation of simulation resources. In addition to covering results for network models based on the Poisson point process, this book presents recent results for when non-Poisson base station configurations appear Poisson, due to random propagation effects such as fading and shadowing, as well as non-Poisson models for base station configurations, with a focus on determinantal point processes and tractable approximation methods. Theoretical results are illustrated with practical Long-Term Evolution (LTE) applications and compared with real-world deployment results Read more...
Abstract:
Achieve faster, more efficient network design and optimization with this comprehensive guide. Presenting the latest analytic methods and results from stochastic geometry for understanding the behaviour of heterogeneous cellular networks, and including practical Long-Term Evolution (LTE) applications, it is ideal for engineers who design wireless communication networks. Read more...
Author(s): Błaszczyszyn, Bartłomiej et al.
Publisher: Cambridge University Press
Year: 2018
Language: English
Pages: 192
Tags: Stochastic geometry.;Stochastic models.;Wireless communication systems -- Mathematics.;Stochastic geometry;Stochastic models
Content: Part I. Stochastic Geometry: 1. Introduction
2. The role of stochastic geometry in HetNet analysis
3. A brief course in stochastic geometry
4. Statistics of received power at the typical location
Part II. SINR Analysis: 5. Downlink SINR: fundamental results
6. Downlink SINR: advanced results
7. Downlink SINR: further extensions
8. Extensions to non-Poisson models.