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Coding Improves the Optimal Delay-Throughput Trade-offs in Mobile Ad-Hoc Networks: Two-Dimensional I.I.D. Mobility Models

Networking and Internet Architecture 2007-07-13 v6 Information Theory math.IT

Abstract

In this paper, we investigate the delay-throughput trade-offs in mobile ad-hoc networks under two-dimensional i.i.d. mobility models. We consider two mobility time-scales: (i) Fast mobility where node mobility is at the same time-scale as data transmissions; (ii) Slow mobility where node mobility is assumed to occur at a much slower time-scale than data transmissions. Given a delay constraint D,D, the main results are as follows: (1) For the two-dimensional i.i.d. mobility model with fast mobiles, the maximum throughput per source-destination (S-D) pair is shown to be O(D/n),O(\sqrt{D/n}), where nn is the number of mobiles. (2) For the two-dimensional i.i.d. mobility model with slow mobiles, the maximum throughput per S-D pair is shown to be O(D/n3).O(\sqrt[3]{D/n}). (3) For each case, we propose a joint coding-scheduling algorithm to achieve the optimal delay-throughput trade-offs.

Keywords

Cite

@article{arxiv.cs/0611144,
  title  = {Coding Improves the Optimal Delay-Throughput Trade-offs in Mobile Ad-Hoc Networks: Two-Dimensional I.I.D. Mobility Models},
  author = {Lei Ying and Sichao Yang and R. Srikant},
  journal= {arXiv preprint arXiv:cs/0611144},
  year   = {2007}
}

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R2 v1 2026-07-22T12:27:21.431Z