• DocumentCode
    112163
  • Title

    Asymptotic Deployment Gain: A Simple Approach to Characterize the SINR Distribution in General Cellular Networks

  • Author

    Anjin Guo ; Haenggi, Martin

  • Author_Institution
    Dept. of Electr. Eng., Univ. of Notre Dame, Notre Dame, IN, USA
  • Volume
    63
  • Issue
    3
  • fYear
    2015
  • fDate
    Mar-15
  • Firstpage
    962
  • Lastpage
    976
  • Abstract
    In cellular network models, the base stations are usually assumed to form a lattice or a Poisson point process (PPP). In reality, however, they are deployed neither fully regularly nor completely randomly. Accordingly, in this paper, we consider the very general class of motion-invariant models and analyze the behavior of the outage probability (the probability that the signal-to-interference-plus-noise-ratio (SINR) is smaller than a threshold) as the threshold goes to zero. We show that, remarkably, the slope of the outage probability (in dB) as a function of the threshold (also in dB) is the same for essentially all motion-invariant point processes. The slope merely depends on the fading statistics. Using this result, we introduce the notion of the asymptotic deployment gain (ADG), which characterizes the horizontal gap between the success probabilities of the PPP and another point process in the high-reliability regime (where the success probability is near 1). To demonstrate the usefulness of the ADG for the characterization of the SINR distribution, we investigate the outage probabilities and the ADGs for different point processes and fading statistics by simulations.
  • Keywords
    cellular radio; probability; radiofrequency interference; stochastic processes; telecommunication network reliability; ADG; PPP; Poisson point process; SINR distribution; asymptotic deployment gain; base stations; cellular network models; fading statistics; motion-invariant models; motion-invariant point processes; outage probability; signal-to-interference-plus-noise-ratio; success probability; Gain; Interference; Lattices; Probability; Rayleigh channels; Signal to noise ratio; Cellular networks; Coverage; Interference; Stochastic Geometry; coverage; interference; stochastic geometry;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2014.2387170
  • Filename
    7000541