• DocumentCode
    980197
  • Title

    Distributed autonomous wireless channel assignment algorithm with power control

  • Author

    Foschini, Gerard J. ; Miljanic, Zoran

  • Author_Institution
    Crawford Hill Lab., AT&T Bell Labs., Holmdel, NJ, USA
  • Volume
    44
  • Issue
    3
  • fYear
    1995
  • fDate
    8/1/1995 12:00:00 AM
  • Firstpage
    420
  • Lastpage
    429
  • Abstract
    Local autonomous dynamic channel allocation (LADCA) including power control is essential to accommodating the anticipated explosion of demand for wireless. The authors simulate call performance for users accessing channels in a regular cellular array with a base located at the center of each hexagon. The computer model includes stochastic channel demand and a propagation environment characterized by attenuation with distance as well as shadow fading. The study of LADCA shows that distributed power control and channel access can be combined in an access management policy that achieves satisfactory system capacity and provides desired call performance. The authors report: LADCA/power control is observed to be stable alleviating a major concern about users unaware of the signal to interference problems their presence on a channel might cause to others. There can be substantial inadvertent dropping of calls in progress caused by originating calls. Modeling user time dynamics is essential. LADCA contrasts very favorably with fixed channel allocation (FCA) in a comparative example
  • Keywords
    access protocols; cellular radio; electromagnetic wave absorption; electromagnetic wave scattering; fading; frequency allocation; land mobile radio; multi-access systems; power control; radio spectrum management; radiofrequency interference; radiowave propagation; telecommunication control; time-varying channels; LADCA; access management policy; attenuation; call dropping; call performance; cellular array; channel access; distributed autonomous wireless channel assignment algorithm; hexagon; interference problems; local autonomous dynamic channel allocation; power control; propagation environment; shadow fading; stochastic channel demand; system capacity; user time dynamics; Attenuation; Channel allocation; Computational modeling; Energy management; Explosions; Fading; Power control; Power system management; Power system modeling; Stochastic processes;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/25.406608
  • Filename
    406608