• DocumentCode
    50385
  • Title

    Game-Theoretic Hierarchical Resource Allocation for Heterogeneous Relay Networks

  • Author

    Liang Liang ; Gang Feng ; Yunjian Jia

  • Author_Institution
    Coll. of Commun. Eng., Chongqing Univ., Chongqing, China
  • Volume
    64
  • Issue
    4
  • fYear
    2015
  • fDate
    Apr-15
  • Firstpage
    1480
  • Lastpage
    1492
  • Abstract
    Relay nodes (RNs), as important components of heterogeneous networks introduced in Long-Term Evolution-Advanced systems, are employed to improve network capacity and extend cell coverage in a cost-effective manner. In heterogeneous relay networks, there are two types of user access connections: the direct link and the two-hop link. The former is used when a user accesses the base station (BS) directly, whereas the latter, which is composed of a backhaul link and an access link, is used when a user accesses the BS via an RN. For the RNs with in-band wireless backhauls, two-hop links operate in shared spectrum, and thus, resource allocation is a challenging issue to provide sufficient capacity for backhaul links while maintaining fair sharing of resources with normal macro users. In this paper, we develop a hierarchical game based on the Stackelberg model to address the resource allocation in heterogeneous relay networks. The proposed game consists of two subgames, namely, the backhaul-level game (BLG) and the access-level game (ALG), respectively. In the game model, RNs in backhaul links as leaders play the BLG, whereas mobile stations (MSs) in access links as followers play the ALG. By estimating the achievable rates of MSs, the leaders choose their optimal resource-allocation strategies, and then, the followers do the best responses to the leaders´ strategies. Simulation results demonstrate that our proposed hierarchical game can guarantee the throughput balance between backhaul and access links, and thus, improve the user data rates and the overall system resource utilization, as compared with the resource-allocation schemes that consider backhaul and access links separately.
  • Keywords
    Long Term Evolution; cellular radio; game theory; relay networks (telecommunication); resource allocation; Long-Term Evolution-Advanced systems; Stackelberg model; access link; access-level game; backhaul link; backhaul-level game; base station; cell coverage extension; direct link; fair resource sharing; game-theoretic hierarchical resource allocation; heterogeneous relay networks; in-band wireless backhauls; mobile stations; network capacity improvement; overall system resource utilization; relay nodes; two-hop link; user access connection; user data rate improvement; Games; Interference; Manganese; Resource management; Throughput; Heterogeneous network (HetNet); Stackelberg game; relay; resource allocation;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2014.2330342
  • Filename
    6832655