• DocumentCode
    2670276
  • Title

    Millimeter Wave WPAN: Cross-Layer Modeling and Multi-Hop Architecture

  • Author

    Singh, Sumit ; Ziliotto, Federico ; Madhow, Upamanyu ; Belding, Elizabeth M. ; Rodwell, Mark J.W.

  • Author_Institution
    Univ. of California, Santa Barbara
  • fYear
    2007
  • fDate
    6-12 May 2007
  • Firstpage
    2336
  • Lastpage
    2340
  • Abstract
    The 7 GHz of unlicensed spectrum in the 60 GHz band offers the potential for multiGigabit indoor wireless personal area networking (WPAN). With recent advances in the speed of silicon (CMOS and SiGe) processes, low-cost transceiver realizations in this "millimeter (mm) wave" band are within reach. However, mm wave communication links are more fragile than those at lower frequencies (e.g., 2.4 or 5 GHz) because of larger propagation losses and reduced diffraction around obstacles. On the other hand, directional antennas that provide directivity gains and reduction in delay spread are far easier to implement at mm-scale wavelengths. In this paper, we present a cross-layer modeling methodology and a novel multihop medium access control (MAC) architecture for efficient utilization of 60 GHz spectrum, taking into account the preceding physical characteristics. We propose an in-room WPAN architecture in which every link is constrained to be directional, for improved power efficiency (due to directivity gains) and simplicity of implementation (due to reduced delay spread). We develop an elementary diffraction-based model to determine network link connectivity, and define a multihop MAC protocol that accounts for directional transmission/reception, procedures for topology discovery and recovery from link blockages.
  • Keywords
    access protocols; directive antennas; indoor radio; millimetre wave antennas; millimetre wave propagation; personal area networks; radio links; telecommunication network topology; transceivers; cross-layer modeling; directional transmission-reception; elementary diffraction-based model; frequency 60 GHz; in-room WPAN architecture; link blockages; low-cost transceiver realizations; millimeter wave WPAN; mm wave communication links; multigigabit indoor wireless personal area networking; multihop MAC architecture; multihop medium access control; network link connectivity; topology discovery; topology recovery; CMOS process; Diffraction; Frequency; Germanium silicon alloys; Media Access Protocol; Millimeter wave communication; Millimeter wave technology; Semiconductor device modeling; Silicon germanium; Transceivers;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    INFOCOM 2007. 26th IEEE International Conference on Computer Communications. IEEE
  • Conference_Location
    Anchorage, AK
  • ISSN
    0743-166X
  • Print_ISBN
    1-4244-1047-9
  • Type

    conf

  • DOI
    10.1109/INFCOM.2007.276
  • Filename
    4215858