• DocumentCode
    170846
  • Title

    Application-level scheduling with deadline constraints

  • Author

    Huasen Wu ; Xiaojun Lin ; Xin Liu ; Youguang Zhang

  • Author_Institution
    Sch. of Electron. & Inf. Eng., Beihang Univ., Beijing, China
  • fYear
    2014
  • fDate
    April 27 2014-May 2 2014
  • Firstpage
    2436
  • Lastpage
    2444
  • Abstract
    Opportunistic scheduling of delay-tolerant traffic has been shown to substantially improve spectrum efficiency. To encourage users to adopt delay-tolerant scheduling for capacity-improvement, it is critical to provide guarantees in terms of completion time. In this paper, we study application-level scheduling with deadline constraints, where the deadline is pre-specified by users/applications and is associated with a deadline violation probability. To address the exponentially-high complexity due to temporally-varying channel conditions and deadline constraints, we develop a novel asymptotic approach that exploits the largeness of the network to our advantage. Specifically, we identify a lower bound on the deadline violation probability, and propose simple policies that achieve the lower bound in the large-system regime. The results in this paper thus provide a rigorous analytical framework to develop and analyze policies for application-level scheduling under very general settings of channel models and deadline requirements. Further, based on the asymptotic approach, we propose the notion of Application-Level Effective Capacity region, i.e., the throughput region that can be supported subject to deadline constraints, which allows us to quantify the potential gain of application-level scheduling.
  • Keywords
    Internet; delay tolerant networks; mobile computing; probability; radio spectrum management; scheduling; telecommunication channels; telecommunication traffic; application-level effective capacity region; application-level scheduling; asymptotic approach; channel models; completion time; deadline constraints; deadline requirements; deadline violation probability; delay-tolerant scheduling; delay-tolerant traffic; opportunistic scheduling; spectrum efficiency; temporally-varying channel conditions; throughput region; Computers; Conferences; Delays; Educational institutions; Optimal scheduling; Processor scheduling; Scheduling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    INFOCOM, 2014 Proceedings IEEE
  • Conference_Location
    Toronto, ON
  • Type

    conf

  • DOI
    10.1109/INFOCOM.2014.6848189
  • Filename
    6848189