DocumentCode :
1433428
Title :
Understanding and Tackling the Root Causes of Instability in Wireless Mesh Networks
Author :
Aziz, Adel ; Starobinski, David ; Thiran, Patrick
Author_Institution :
Sch. of Comput. & Commun. Sci., Ecole Polytech. Federate de Lausanne (EPFL), Lausanne, Switzerland
Volume :
19
Issue :
4
fYear :
2011
Firstpage :
1178
Lastpage :
1193
Abstract :
We investigate, both theoretically and experimentally, the stability of CSMA-based wireless mesh networks, where a network is said to be stable if and only if the queue of each relay node remains (almost surely) finite. We identify two key factors that impact stability: the network size and the so-called “stealing effect,” a consequence of the hidden-node problem and nonzero transmission delays. We consider the case of a greedy source and prove, by using Foster´s theorem, that three-hop networks are stable, but only if the stealing effect is accounted for. We also prove that four-hop networks are, on the contrary, always unstable (even with the stealing effect) and show by simulations that instability extends to more complex linear and nonlinear topologies. To tackle this instability problem, we propose and evaluate a novel, distributed flow-control mechanism called EZ-flow. EZ-flow is fully compatible with the IEEE 802.11 standard (i.e., it does not modify headers in packets), can be implemented using off-the-shelf hardware, and does not entail any communication overhead. EZ-flow operates by adapting the minimum congestion window parameter at each relay node, based on an estimation of the buffer occupancy at its successor node in the mesh. We show how such an estimation can be conducted passively by taking advantage of the broadcast nature of the wireless channel. Real experiments, run on a nine-node test-bed deployed over four different buildings, show that EZ-flow effectively smooths traffic and improves delay, throughput, and fairness performance.
Keywords :
carrier sense multiple access; distributed control; greedy algorithms; stability; telecommunication congestion control; telecommunication network topology; telecommunication traffic; wireless channels; wireless mesh networks; CSMA stability; EZ-flow; Foster theorem; IEEE 802.11 standard; distributed flow-control mechanism; greedy source; linear topology; minimum congestion window parameter; network size; nonlinear topology; nonzero transmission delays; relay node; stealing effect; wireless channel; wireless mesh networks; IEEE 802.11 Standards; Markov processes; Multiaccess communication; Protocols; Spread spectrum communication; Stability analysis; Throughput; Ad hoc networks; Lyapunov method; measurement; performance evaluation; scheduling algorithm; stability analysis; wireless mesh networks;
fLanguage :
English
Journal_Title :
Networking, IEEE/ACM Transactions on
Publisher :
ieee
ISSN :
1063-6692
Type :
jour
DOI :
10.1109/TNET.2010.2102771
Filename :
5699382
Link To Document :
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