Sparse Channel Estimation and Equalization for Ofdm-Based Underwater Cooperative Systemsw With Amplify-And Relaying

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Date

2016

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Journal ISSN

Volume Title

Publisher

IEEE-INST Electrical Electronics Engineers Inc

Open Access Color

Green Open Access

Yes

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8

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3

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No
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Abstract

This paper is concerned with a challenging problem of channel estimation and equalization for amplify-and-forward cooperative relay based orthogonal frequency division multi-plexing (OFDM) systems in sparse underwater acoustic (UWA) channels. The sparseness of the channel impulse response and prior information for the non-Gaussian channel gains modeled by an exact continuous Gaussian mixture (CGM) are exploited to improve the performance of the channel estimation algorithm. The resulting novel algorithm initially estimates the overall sparse complex-valued channel taps from the source to the destination as well as their locations using the matching pursuit (MP) approach. The effective time-domain non-Gaussian noise is approximated well as a Gaussian noise in the frequency-domain where the estimation takes place. An efficient and low complexity algorithm is developed based on a combination of the MP and the maximum a posteriori probability (MAP) based space-alternating generalized expectation-maximization technique to improve the estimates of the channel taps and their locations in an iterative manner. Computer simulations show that the UWA channel is estimated very effectively and the proposed algorithm exhibits excellent symbol error rate and channel estimation performance.

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Keywords

AF relaying, Continuous Gaussian Mixture, Matching Pursuit, OFDM, Sage, Underwater Acoustic Channel Estimation, AF relaying, AF Relaying, Continuous gaussian mixture, Continuous Gaussian Mixture, Underwater Acoustic Channel Estimation, Sage, SAGE, OFDM, Matching Pursuit

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Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
41

Source

IEEE Transactions on Signal Processing

Volume

64

Issue

1

Start Page

214

End Page

228
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CrossRef : 26

Scopus : 49

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49

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Web of Science™ Citations

40

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Page Views

10

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Downloads

263

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