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Open AccessJournal ArticleDOI

Modeling Heterogeneous Network Interference Using Poisson Point Processes

TLDR
This paper proposes to analyze downlink performance in a fixed-size cell, which is inscribed within a weighted Voronoi cell in a Poisson field of interferers, using recent applications of stochastic geometry to analyze cellular systems.
Abstract
Cellular systems are becoming more heterogeneous with the introduction of low power nodes including femtocells, relays, and distributed antennas. Unfortunately, the resulting interference environment is also becoming more complicated, making evaluation of different communication strategies challenging in both analysis and simulation. Leveraging recent applications of stochastic geometry to analyze cellular systems, this paper proposes to analyze downlink performance in a fixed-size cell, which is inscribed within a weighted Voronoi cell in a Poisson field of interferers. A nearest out-of-cell interferer, out-of-cell interferers outside a guard region, and cross-tier interferers are included in the interference calculations. Bounding the interference power as a function of distance from the cell center, the total interference is characterized through its Laplace transform. An equivalent marked process is proposed for the out-of-cell interference under additional assumptions. To facilitate simplified calculations, the interference distribution is approximated using the Gamma distribution with second order moment matching. The Gamma approximation simplifies calculation of the success probability and average rate, incorporates small-scale and large-scale fading, and works with co-tier and cross-tier interference. Simulations show that the proposed model provides a flexible way to characterize outage probability and rate as a function of the distance to the cell edge.

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Citations
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Proceedings ArticleDOI

A Machine Learning Approach to Predicting Coverage in Random Wireless Networks

TL;DR: This work first shows that the coverage probability can be accurately approximated by a parametrized sigmoid-like function, and by building large simulation-based datasets, the relationship between the wireless network parameters and the parameters of the sigmoids- like function is modeled using a neural network.
Proceedings ArticleDOI

A new model for physical layer security in cellular networks

TL;DR: This analysis shows that unlike isolated cells, the secrecy rate in a cellular network does not grow monotonically with the transmit power, and shows that there exists an optimal value for the base station deployment density that maximizes the secrecy rates.
Proceedings ArticleDOI

Load-aware user-centric virtual cell design in Ultra-Dense Network

TL;DR: A novel user-centric virtual cell design that avoids cell overload and achieve a reasonable balance of resources and performance is proposed for the downlink in Ultra-Dense Network.
Journal ArticleDOI

Performance Analysis of Wireless Powered Communications With Multiple Antennas

TL;DR: This paper analytically investigates the performance of a harvest-then-transmit multiple-input multiple-output communication system, where the source uses all harvested energy for information transmission in each time block.
Journal ArticleDOI

Performance analysis of hexagonal cellular networks in fading channels

TL;DR: The improvement in spectral efficiency achieved by FFR over the universal frequency reuse increases as the transmission probability increases and the shadowing becomes less severe, and this improvement increases to about 30% if a 3-dB signal-to-interference-plus-noise ratio gap from Shannon capacity is further accounted.
References
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Reference BookDOI

Asymptotics and Special Functions

TL;DR: A classic reference, intended for graduate students mathematicians, physicists, and engineers, this book can be used both as the basis for instructional courses and as a reference tool as discussed by the authors, and it can be found in many libraries.
Book

Stochastic Geometry and Its Applications

TL;DR: Random Closed Sets I--The Boolean Model. Random Closed Sets II--The General Case.
Journal ArticleDOI

A Tractable Approach to Coverage and Rate in Cellular Networks

TL;DR: The proposed model is pessimistic (a lower bound on coverage) whereas the grid model is optimistic, and that both are about equally accurate, and the proposed model may better capture the increasingly opportunistic and dense placement of base stations in future networks.
Journal ArticleDOI

Femtocell networks: a survey

TL;DR: The technical and business arguments for femtocells are overview and the state of the art on each front is described and the technical challenges facing femtocell networks are described and some preliminary ideas for how to overcome them are given.
Book ChapterDOI

The m-Distribution—A General Formula of Intensity Distribution of Rapid Fading

TL;DR: In this article, the authors summarized the principal results of a series of statistical studies in the last seven years on the intensity distributions due to rapid fading, and presented an extremely simplified method for estimating the improvement available from various systems of diversity reception.
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