DocumentCode :
3259389
Title :
Maximum-Likelihood Decoding and Performance Analysis of a Noisy Channel Network with Network Coding
Author :
Ming Xiao ; Aulin, T.M.
Author_Institution :
Chalmers Univ. of Technol., Gothenburg
fYear :
2007
fDate :
24-28 June 2007
Firstpage :
6103
Lastpage :
6110
Abstract :
We investigate sink decoding methods and performance analysis approaches for a network with intermediate node encoding (coded network). The network consists of statistically independent noisy channels. The sink bit error probability (BEP) is the performance measure. We first discuss soft-decision decoding without statistical information on the upstream channels (the channels not directly connected to the sink). The example shows that the decoder cannot significantly improve the BEP from the hard-decision decoder. We develop the union bound to analyze the decoding approach. The bound can show the asymptotic (regarding SNR: signal-to-noise ratio) performance. Using statistical information of the upstream channels, we then show the method of maximum-likelihood (ML) decoding. With the decoder, a significant improvement in the BEP is obtained. To evaluate the union bound for the ML decoder, we use an equivalent signal point procedure. It can be reduced to a least-squares problem with linear constraints for medium-to-high SNR.
Keywords :
encoding; error statistics; least squares approximations; maximum likelihood decoding; multicast communication; telecommunication channels; bit error probability; maximum-likelihood decoding; network coding; noisy channel network; soft-decision decoding; Communications Society; Computer networks; Error correction codes; Error probability; Maximum likelihood decoding; Monte Carlo methods; Network coding; Peer to peer computing; Performance analysis; Telecommunication computing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications, 2007. ICC '07. IEEE International Conference on
Conference_Location :
Glasgow
Print_ISBN :
1-4244-0353-7
Type :
conf
DOI :
10.1109/ICC.2007.1011
Filename :
4289682
Link To Document :
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