DocumentCode
3119837
Title
Expansion coding: Achieving the capacity of an AEN channel
Author
Koyluoglu, O. Ozan ; Appaiah, Kumar ; Si, Hongbo ; Vishwanath, Sriram
Author_Institution
Lab. for Inf., Networks & Commun., Univ. of Texas at Austin, Austin, TX, USA
fYear
2012
fDate
1-6 July 2012
Firstpage
1932
Lastpage
1936
Abstract
A general method of coding over expansions is proposed, which allows one to reduce the highly non-trivial problem of coding over continuous channels to a much simpler discrete ones. More specifically, the focus is on the additive exponential noise (AEN) channel, for which the (binary) expansion of the (exponential) noise random variable is considered. It is shown that each of the random variables in the expansion corresponds to independent Bernoulli random variables. Thus, each of the expansion levels (of the underlying channel) corresponds to a binary symmetric channel (BSC), and the coding problem is reduced to coding over these parallel channels while satisfying the channel input constraint. This optimization formulation is stated as the achievable rate result, for which a specific choice of input distribution is shown to achieve a rate which is arbitrarily close to the channel capacity in the high SNR regime. Remarkably, the scheme allows for low-complexity capacity-achieving codes for AEN channels, using the codes that are originally designed for BSCs. Extensions to different channel models and applications to other coding problems are discussed.
Keywords
binary codes; channel capacity; channel coding; optimisation; random codes; random noise; AEN channel coding; BSC; SNR; additive exponential noise channel coding; binary symmetric channel; channel input constraint; expansion coding; independent Bernoulli random variable; low-complexity capacity-achieving code; noise random variable; optimization formulation; parallel channel capacity; Additives; Decoding; Encoding; Modulation; Random variables; Signal to noise ratio;
fLanguage
English
Publisher
ieee
Conference_Titel
Information Theory Proceedings (ISIT), 2012 IEEE International Symposium on
Conference_Location
Cambridge, MA
ISSN
2157-8095
Print_ISBN
978-1-4673-2580-6
Electronic_ISBN
2157-8095
Type
conf
DOI
10.1109/ISIT.2012.6283635
Filename
6283635
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