• DocumentCode
    1756665
  • Title

    QoS-Aware and Energy-Efficient Resource Management in OFDMA Femtocells

  • Author

    Long Bao Le ; Niyato, Dusit ; Hossain, Ekram ; Dong In Kim ; Dinh Thai Hoang

  • Author_Institution
    Inst. Nat. de la Rech. Sci. - l´Energie, Mater. et Telecommun. (INRS-EMT), Univ. du Quebec, Montreal, QC, Canada
  • Volume
    12
  • Issue
    1
  • fYear
    2013
  • fDate
    41275
  • Firstpage
    180
  • Lastpage
    194
  • Abstract
    We consider the joint resource allocation and admission control problem for Orthogonal Frequency-Division Multiple Access (OFDMA)-based femtocell networks. We assume that Macrocell User Equipments (MUEs) can establish connections with Femtocell Base Stations (FBSs) to mitigate the excessive cross-tier interference and achieve better throughput. A cross-layer design model is considered where multiband opportunistic scheduling at the Medium Access Control (MAC) layer and admission control at the network layer working at different time-scales are assumed. We assume that both MUEs and Femtocell User Equipments (FUEs) have minimum average rate constraints, which depend on their geographical locations and their application requirements. In addition, blocking probability constraints are imposed on each FUE so that the connections from MUEs only result in controllable performance degradation for FUEs. We present an optimal design for the admission control problem by using the theory of Semi-Markov Decision Process (SMDP). Moreover, we devise a novel distributed femtocell power adaptation algorithm, which converges to the Nash equilibrium of a corresponding power adaptation game. This power adaptation algorithm reduces energy consumption for femtocells while still maintaining individual cell throughput by adapting the FBS power to the traffic load in the network. Finally, numerical results are presented to demonstrate the desirable operation of the optimal admission control solution, the significant performance gain of the proposed hybrid access strategy with respect to the closed access counterpart, and the great power saving gain achieved by the proposed power adaptation algorithm.
  • Keywords
    Markov processes; OFDM modulation; control system synthesis; energy conservation; femtocellular radio; frequency division multiple access; game theory; interference suppression; mobility management (mobile radio); optimal control; probability; quality of service; radiofrequency interference; resource allocation; scheduling; telecommunication control; telecommunication traffic; FBS; FUE; MAC layer; MUE; Nash equilibrium; OFDMA; QoS-aware; SMDP; blocking probability constraints; cross-layer design model; distributed femtocell power adaptation algorithm; energy-efficient resource management; excessive cross-tier interference mitigation; femtocell base station; femtocell user equipment; geographical location; macrocell user equipment; medium access control layer; minimum average rate constraint; multiband opportunistic scheduling; optimal admission control problem; optimal design; orthogonal frequency-division multiple access; resource allocation; semiMarkov decision process; traffic load; Admission control; Femtocells; Integrated circuits; Interference; Macrocell networks; Resource management; Femtocell network; Markov decision process; admission control; blocking probability; channel assignment;
  • fLanguage
    English
  • Journal_Title
    Wireless Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1276
  • Type

    jour

  • DOI
    10.1109/TWC.2012.120412.120141
  • Filename
    6378494