• DocumentCode
    1548730
  • Title

    Optimality of Binary Power Control for the Single Cell Uplink

  • Author

    Inaltekin, Hazer ; Hanly, Stephen V.

  • Author_Institution
    Dept. of Electr. & Electron. Eng., Antalya Int. Univ., Antalya, Turkey
  • Volume
    58
  • Issue
    10
  • fYear
    2012
  • Firstpage
    6484
  • Lastpage
    6498
  • Abstract
    This paper considers the optimum single cell power control maximizing the aggregate (uplink) communication rate of the cell when there are peak power constraints at mobile users, and a low-complexity data decoder (without successive decoding) at the base station. It is shown that the optimum power allocation is binary, which means that links are either “on” or “off.” By exploiting further structure of the optimum binary power allocation, a simple polynomial-time algorithm for finding the optimum transmission power allocation is proposed, together with a reduced complexity near-optimal heuristic algorithm. Sufficient conditions under which channel-state aware time division multiple access (TDMA) maximizes the aggregate communication rate are established. In a numerical study, we compare and contrast the performance achieved by the optimum binary power-control policy with other suboptimum policies and the throughput capacity achievable via successive decoding. It is observed that two dominant modes of communication arise, wideband or TDMA, and that successive decoding achieves better sum-rates only under near perfect interference cancellation efficiency. In this paper, we exploit the theory of majorization to obtain the aforementioned results. In the final part of this paper, we do so to solve power-control problems in the areas of femtocells and cognitive radio and find that, again, optimal solutions have a binary (or almost binary) character.
  • Keywords
    codecs; cognitive radio; femtocellular radio; interference suppression; power control; telecommunication control; time division multiple access; TDMA; aggregate communication rate; base station; binary power control optimality; channel-state aware time division multiple access; cognitive radio; femtocells; interference cancellation efficiency; low-complexity data decoder; mobile users; numerical study; optimum binary power-control policy; optimum transmission power allocation; peak power constraints; reduced complexity near-optimal heuristic algorithm; single cell power control; single cell uplink; successive decoding; uplink communication rate; Base stations; Decoding; Fading; Interference; Resource management; Signal to noise ratio; Vectors; Communication networks; Schur-convexity; majorization; power control; successive decoding; sum-rate capacity; time division multiple access (TDMA);
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/TIT.2012.2206071
  • Filename
    6226469