• DocumentCode
    1912650
  • Title

    Distributed caching in 5G networks: An Alternating Direction Method of Multipliers approach

  • Author

    Abboud, Azary ; Bastug, Ejder ; Hamidouche, Kenza ; Debbah, Merouane

  • Author_Institution
    Large Networks & Syst. Group (LANEAS, Supelec, Gif-sur-Yvette, France
  • fYear
    2015
  • fDate
    June 28 2015-July 1 2015
  • Firstpage
    171
  • Lastpage
    175
  • Abstract
    We consider the problem of distributed caching in next generation mobile cellular networks (a.k.a., 5G) where densely-deployed small base stations (SBSs) are able to store and deliver users´ content accordingly. In particular, we formulate the optimal cache allocation policy as a convex optimization problem where a subset of SBSs have their own i) local cost function which captures backhaul consumption aspects in terms of bandwidth and ii) a set of local network parameters and storage constraints. Given the fact that no coordination involves between SBSs, we then solve this problem distributively using the Alternating Direction Method of Multipliers (ADMM) approach. The proposed ADMM-based algorithm relies on the application of random Gauss-Seidel iterations on the Douglas-Rachford splitting operator, which results in a low-complexity and easy-to-implement solution for SBSs. We examine the convergence of our proposed algorithm via numerical simulations with different parameters of interest such as storage capacity distribution of SBSs, content catalogue size, demand intensity and demand shape. Our numerical results show that the proposed algorithm performs well in terms of convergence and requires less iterations as the number of contents in the catalogue increases.
  • Keywords
    5G mobile communication; convex programming; iterative methods; next generation networks; 5G networks; ADMM-based algorithm; Douglas-Rachford; Gauss-Seidel iteration; SBS; alternating direction method of multipliers; cache allocation policy; content catalogue size; convex optimization problem; demand intensity; demand shape; distributed caching; local cost function; next generation mobile cellular networks; small base stations; storage capacity distribution; Conferences; Convex functions; Cost function; Resource management; Shape; Signal processing algorithms; Wireless communication; 5G; ADMM; distributed caching; distributed convex optimization; optimal cache allocation; wireless networks;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Signal Processing Advances in Wireless Communications (SPAWC), 2015 IEEE 16th International Workshop on
  • Conference_Location
    Stockholm
  • Type

    conf

  • DOI
    10.1109/SPAWC.2015.7227022
  • Filename
    7227022