DocumentCode :
2332517
Title :
Towards Efficient Designs for In-network Computing with Noisy Wireless Channels
Author :
Li, Chengzhi ; Dai, Huaiyu
Author_Institution :
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
fYear :
2010
fDate :
14-19 March 2010
Firstpage :
1
Lastpage :
8
Abstract :
In this paper we study distributed function computation in a noisy multi-hop wireless network, in which n nodes are uniformly and independently distributed in a unit square. We adopt the adversarial noise model, for which independent binary symmetric channels are assumed for any point-to-point transmissions, with (not necessarily identical) crossover probabilities bounded above by some constant ¿. Each node holds an m-bit integer per instance and the computation is started after each node collects N readings. The goal is to compute a global function with a certain fault tolerance, in this distributed setting; we mainly deal with divisible functions, which essentially covers the main body of interest for wireless applications. We focus on protocol designs that are efficient in terms of communication complexity. We first devise a general protocol for evaluating any divisible functions, addressing both one-shot (N = O(1)) and block computation, and both constant and large m scenarios; its bottleneck in different scenarios is also analyzed. Based on this analysis, we then endeavor to improve the design for two special cases: identity function, and some restricted type-threshold functions, both focusing on the constant m and N scenario.
Keywords :
communication complexity; distributed processing; fault tolerance; probability; protocols; telecommunication computing; wireless channels; communication complexity; crossover probabilities; distributed function computation; fault tolerance; identity function; in-network computing; independent binary symmetric channels; multihop wireless network; noisy wireless channels; point-to-point transmissions; protocol designs; restricted type-threshold functions; wireless applications; Broadcasting; Complexity theory; Computer networks; Distributed computing; Fault tolerance; History; Information processing; Peer to peer computing; Protocols; Wireless networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
INFOCOM, 2010 Proceedings IEEE
Conference_Location :
San Diego, CA
ISSN :
0743-166X
Print_ISBN :
978-1-4244-5836-3
Type :
conf
DOI :
10.1109/INFCOM.2010.5462023
Filename :
5462023
Link To Document :
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