Title :
Stochastic Geometry Modeling and Performance Evaluation of MIMO Cellular Networks Using the Equivalent-in-Distribution (EiD)-Based Approach
Author :
Di Renzo, Marco ; Wei Lu
Author_Institution :
Lab. des Signaux et Syst., Univ. Paris-Sud XI, Gif-sur-Yvette, France
Abstract :
The equivalent-in-distribution (EiD)-based approach to the analysis of single-input-single-output (SISO) cellular networks for transmission over Rayleigh fading channels has recently been introduced [1]. Its rationale relies upon formulating the aggregate other-cell interference in terms of an infinite summation of independent and conditionally distributed Gaussian random variables (RVs). This approach leads to exact integral expressions of the error probability for arbitrary bi-dimensional modulations. In this paper, the EiD-based approach is generalized to the performance analysis of multiple-input-multiple-output (MIMO) cellular networks for transmission over Rayleigh fading channels. The proposed mathematical formulation allows us to study a large number of MIMO arrangements, including receive-diversity, spatial-multiplexing, orthogonal space-time block coding, zero-forcing reception and zero-forcing precoding. Depending on the MIMO setup, either exact or approximate integral expressions of the error probability are provided. In the presence of other-cell interference and noise, the error probability is formulated in terms of a two-fold integral. In interference-limited cellular networks, the mathematical framework simplifies to a single integral expression. As a byproduct, the proposed approach enables us to study SISO cellular networks for transmission over Nakagami-m fading channels. The mathematical analysis is substantiated with the aid of extensive Monte Carlo simulations.
Keywords :
MIMO communication; Monte Carlo methods; Nakagami channels; Rayleigh channels; block codes; cellular radio; error statistics; interference (signal); performance evaluation; precoding; space division multiplexing; EiD-based approach; MIMO cellular network; Monte Carlo simulation; Nakagami-m fading channel; RV; Rayleigh fading channel; SISO cellular network; arbitrary bidimensional modulation; distributed Gaussian random variable; equivalent-in-distribution-based approach; error probability; integral expression; interference-limited cellular network; multiple-input-multiple-output cellular network; orthogonal space-time block coding; other-cell interference; performance evaluation; receive-diversity; single-input-single-output cellular network; spatial-multiplexing; stochastic geometry modeling; zero- forcing reception; zero-forcing precoding; Demodulation; Error probability; Fading; Interference; MIMO; Silicon; Stochastic processes; Cellular Networks; Cellular networks; MIMO Systems; MIMO systems; Other-Cell Interference; Point Processes.; Stochastic Geometry; other-cell interference; point processes; stochastic geometry;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2015.2388760