• DocumentCode
    2130
  • Title

    The Impact of Rate Adaptation on Capacity-Delay Tradeoffs in Mobile Ad Hoc Networks

  • Author

    Cheng Wang ; Xiang-Yang Li ; Changjun Jiang ; Huiya Yan

  • Author_Institution
    Key Lab. of Embedded Syst. & Service Comput., Shanghai, China
  • Volume
    13
  • Issue
    11
  • fYear
    2014
  • fDate
    Nov. 2014
  • Firstpage
    2661
  • Lastpage
    2674
  • Abstract
    In this paper, we focus on the asymptotic capacity and delay, and their tradeoffs in mobile ad hoc networks (MANETs). As we all know, some fixed rate communication models such as the protocol model and the physical model have been studied in the past. However, our work aims to investigate the impact of an adaptive rate communication model on capacity-delay tradeoffs in MANETs under classical mobility models. Specifically, we adopt a well-known adaptive rate model called the generalized physical model (GphyM). The mobility of nodes is characterized by two broad classes of practical mobility models and they are hybrid random walk models and discrete random direction models. The two models generalize many mobility models studied in the literature, including the random walk, i.i.d., Brownian, and random way point models. For each mobility model, we derive the optimal delay for the optimal per-session unicast capacity (that of constant order Θ(1)) under the generalized physical model, depending on the individual parameters of mobility models. In particular, we show that for the i.i.d. model, compared with those under the protocol and physical models, the adaptive feature of link rate under the generalized physical model results in a significant decrease in the optimal delay for the optimal capacity; more precisely, both the optimal capacity and optimal delay can be simultaneously achieved, while there is no improvement for the random way-point model.
  • Keywords
    Brownian motion; delays; mobile ad hoc networks; GphyM; MANET; adaptive rate communication model impact; capacity-delay tradeoffs; classical mobility models; discrete random direction models; generalized physical model; hybrid random walk models; link rate adaptive feature; mobile ad hoc networks; nodes mobility; optimal delay; optimal per-session unicast capacity; physical model; practical mobility models; protocol model; random way-point model; Ad hoc networks; Adaptation models; Analytical models; Delays; Mobile computing; Protocols; Relays; Capacity-delay tradeoffs; generalized physical model; mobile ad hoc networks; rate adaptation;
  • fLanguage
    English
  • Journal_Title
    Mobile Computing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1233
  • Type

    jour

  • DOI
    10.1109/TMC.2014.2307291
  • Filename
    6747314