• DocumentCode
    660142
  • Title

    SPMLD: Sub-Packet Based Multipath Load Distribution for Real-Time Multimedia Traffic

  • Author

    Jiyan Wu ; Xiaokun Wu ; Junliang Chen

  • Author_Institution
    State Key Lab. of Networking & Switching Technol., Beijing Univ. of Posts & Telecommun., Beijing, China
  • fYear
    2013
  • fDate
    2-5 Sept. 2013
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Load distribution is vital to the performance of multipath transport. The task becomes more challenging in real-time multimedia applications (RTMA), which impose stringent delay requirements. Two key issues to be addressed are: 1) how to minimize end-to-end delay, and 2) how to alleviate packet reordering that incurs additional recovery time at the receiver. In this paper, we propose SPMLD, a new model that splits traffic at the granularity of sub-packet. The Sub-Packet based Multipath Load Distribution (SPMLD) model aims to minimize total packet delay by effectively aggregating multiple parallel paths as a single virtual path. First, we formulate the packet splitting over multiple paths as a constrained optimization problem and derive its solution based on progressive approximation method. Second, in the solution, we analyze queuing delay by introducing D/M/1 model and obtain the expression of dynamic packet splitting ratio for each path. The performances of SPMLD are evaluated through extensive simulations in QualNet using real-time H.264 video streaming. Experimental results demonstrate that: SPMLD outperforms previous flow and packet based load distribution models in total packet delay, end-to-end delay and seldom induces packet reordering. Besides, SPMLD´s extra overhead is tiny compared to the input video streaming.
  • Keywords
    queueing theory; video coding; video streaming; D/M/1 model; QualNet; RTMA; SPMLD model; constrained optimization problem; delay requirement; dynamic packet splitting ratio; end-to-end delay; end-to-end delay minimization; multipath transport; packet reordering; progressive approximation method; queuing delay; real-time H.264 video streaming; real-time multimedia application; real-time multimedia traffic; recovery time; subpacket granularity; subpacket-based multipath load distribution model; total packet delay; total packet delay minimization; Analytical models; Bandwidth; Delays; Load modeling; Mathematical model; Propagation delay; Streaming media;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Vehicular Technology Conference (VTC Fall), 2013 IEEE 78th
  • Conference_Location
    Las Vegas, NV
  • ISSN
    1090-3038
  • Type

    conf

  • DOI
    10.1109/VTCFall.2013.6692422
  • Filename
    6692422