• DocumentCode
    2745354
  • Title

    A framework for integrated discrete-rate and power adaptation and user selection in heterogeneous wireless networks

  • Author

    Taki, Mehrdad ; Lahouti, Farshad

  • Author_Institution
    Wireless Multimedia Commun. Lab., Univ. of Tehran, Tehran, Iran
  • fYear
    2011
  • fDate
    20-22 June 2011
  • Firstpage
    252
  • Lastpage
    257
  • Abstract
    This paper presents novel joint link adaptation and user selection (JLAUS) schemes to maximize a weighted sum of the average rates of wireless links sharing a spectrum, while their possibly different minimum required average rates and quality of service constraints are provisioned. The schemes take into account the instantaneous SNR of all links and select a link for transmission and set its rate and power in a jointly optimized manner. The links operate based on adaptive modulation and coding and power control over heterogeneous wireless fading channels. Two JLAUS schemes are presented. The first scheme provides a framework for integrated analysis and design of link adaptation and user selection and relies on a partitioning of the space of link SNRs into regions. In this setting, the second scheme offers a particular JLAUS design, which enjoys a polynomial design complexity. The design is performed before the transmission starts, based on closed form solutions. The proposed schemes can be easily applied to a multiple access or a broadcast network. Numerical results demonstrate how the proposed JLAUS schemes outperform the benchmark schemes, or effectively meet various user requirements.
  • Keywords
    adaptive codes; adaptive modulation; communication complexity; error statistics; fading channels; radio networks; BER; JLAUS; SNR; adaptive coding; adaptive modulation; bit error rate; heterogeneous wireless fading channels; heterogeneous wireless networks; joint link adaptation and user selection; polynomial design complexity; power adaptation; power control; structured vector quantization; user selection; wireless links; Bit error rate; Complexity theory; Convergence; Signal to noise ratio; Time frequency analysis; Wireless networks;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Wireless Advanced (WiAd), 2011
  • Conference_Location
    London
  • Print_ISBN
    978-1-4577-0110-8
  • Type

    conf

  • DOI
    10.1109/WiAd.2011.5983264
  • Filename
    5983264