DocumentCode :
26202
Title :
A Factor Graph Approach to Joint OFDM Channel Estimation and Decoding in Impulsive Noise Environments
Author :
Nassar, Mohamed ; Schniter, Philip ; Evans, Brian L.
Author_Institution :
Mobile Solutions Lab., Samsung Res. America, San Diego, CA, USA
Volume :
62
Issue :
6
fYear :
2014
fDate :
15-Mar-14
Firstpage :
1576
Lastpage :
1589
Abstract :
We propose a novel receiver for orthogonal frequency division multiplexing (OFDM) transmissions in impulsive noise environments. Impulsive noise arises in many modern wireless and wireline communication systems, such as Wi-Fi and powerline communications, due to uncoordinated interference that is much stronger than thermal noise. We first show that the bit-error-rate optimal receiver jointly estimates the propagation channel coefficients, the noise impulses, the finite-alphabet symbols, and the unknown bits. We then propose a near-optimal yet computationally tractable approach to this joint estimation problem using loopy belief propagation. In particular, we merge the recently proposed “generalized approximate message passing” (GAMP) algorithm with the forward-backward algorithm and soft-input soft-output decoding using a “turbo” approach. Numerical results indicate that the proposed receiver drastically outperforms existing receivers under impulsive noise and comes within 1 dB of the matched-filter bound. Meanwhile, with N tones, the proposed factor-graph-based receiver has only O(NlogN) complexity, and it can be parallelized.
Keywords :
OFDM modulation; channel estimation; error statistics; graph theory; impulse noise; message passing; turbo codes; GAMP algorithm; OFDM channel estimation; Wi-Fi communications; bit-error-rate optimal receiver; factor graph approach; finite-alphabet symbols; forward-backward algorithm; generalized approximate message passing algorithm; impulsive noise environments; joint estimation problem; near-optimal yet computationally tractable approach; orthogonal frequency division multiplexing transmissions; powerline communications; propagation channel coefficients; soft-input soft-output decoding; thermal noise; turbo approach; wireless communication systems; wireline communication systems; Channel estimation; Complexity theory; Estimation; Joints; Noise; OFDM; Receivers; OFDM; factor-graphs; generalized approximate message passing (GAMP); impulsive noise; iterative receivers; sum-product algorithm; uncoordinated interference;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2013.2295063
Filename :
6684289
Link To Document :
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