DocumentCode :
156797
Title :
Bayesian quantized network coding via generalized approximate message passing
Author :
Nabaee, Mojtaba ; Labeau, Fabrice
Author_Institution :
Electr. & Comput. Eng. Dept., McGill Univ., Montreal, QC, Canada
fYear :
2014
fDate :
9-11 April 2014
Firstpage :
1
Lastpage :
7
Abstract :
In this paper, we study message passing-based decoding of real network coded packets. We explain our developments on the idea of using real field network codes for distributed compression of inter-node correlated messages. Then, we discuss the use of iterative message passing-based decoding for the described network coding scenario, as the main contribution of this paper. Motivated by Bayesian compressed sensing, we discuss the possibility of approximate decoding, even with fewer received measurements (packets) than the number of messages. As a result, our real field network coding scenario, called quantized network coding, is capable of inter-node compression without the need to know the inter-node redundancy of messages. We also present our numerical and analytic arguments on the robustness and computational simplicity (relative to the previously proposed linear programming and standard belief propagation) of our proposed decoding algorithm for the quantized network coding.
Keywords :
Bayes methods; compressed sensing; iterative decoding; linear programming; message passing; network coding; Bayesian compressed sensing; Bayesian quantized network coding; distributed compression; internode compression; internode correlated messages; iterative message passing-based decoding; linear programming; network coded packets; Bayes methods; Decoding; Message passing; Network coding; Noise; Noise measurement; Quantization (signal); Bayesian compressed sensing; Network coding; approximate message passing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless Telecommunications Symposium (WTS), 2014
Conference_Location :
Washington, DC
Type :
conf
DOI :
10.1109/WTS.2014.6834995
Filename :
6834995
Link To Document :
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