Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach

<p/> <p>This paper performs a comprehensive performance analysis of a family of non-data-aided feedforward carrier frequency offset estimators for QAM signals transmitted through AWGN channels in the presence of unknown timing error. The proposed carrier frequency offset estimators are a...

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Main Authors: Wang Y, Shi K, Serpedin E
Format: Article
Language:English
Published: SpringerOpen 2004-01-01
Series:EURASIP Journal on Advances in Signal Processing
Subjects:
Online Access:http://dx.doi.org/10.1155/S1110865704403175
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spelling doaj-d6f8d629958b47a188b1c54d456d28492020-11-24T21:18:59ZengSpringerOpenEURASIP Journal on Advances in Signal Processing1687-61721687-61802004-01-01200413856139Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares ApproachWang YShi KSerpedin E<p/> <p>This paper performs a comprehensive performance analysis of a family of non-data-aided feedforward carrier frequency offset estimators for QAM signals transmitted through AWGN channels in the presence of unknown timing error. The proposed carrier frequency offset estimators are asymptotically (large sample) nonlinear least-squares estimators obtained by exploiting the fourth-order conjugate cyclostationary statistics of the received signal and exhibit fast convergence rates (asymptotic variances on the order of <inline-formula><graphic file="1687-6180-2004-856139-i1.gif"/></inline-formula>, where <inline-formula><graphic file="1687-6180-2004-856139-i2.gif"/></inline-formula> stands for the number of samples). The exact asymptotic performance of these estimators is established and analyzed as a function of the received signal sampling frequency, signal-to-noise ratio, timing delay, and number of symbols. It is shown that in the presence of intersymbol interference effects, the performance of the frequency offset estimators can be improved significantly by oversampling (or fractionally sampling) the received signal. Finally, simulation results are presented to corroborate the theoretical performance analysis, and comparisons with the modified Cram&#233;r-Rao bound illustrate the superior performance of the proposed nonlinear least-squares carrier frequency offset estimators.</p>http://dx.doi.org/10.1155/S1110865704403175synchronizationcyclostationarynon-data-aided estimationharmonic retrievalcarrier frequency offset
collection DOAJ
language English
format Article
sources DOAJ
author Wang Y
Shi K
Serpedin E
spellingShingle Wang Y
Shi K
Serpedin E
Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
EURASIP Journal on Advances in Signal Processing
synchronization
cyclostationary
non-data-aided estimation
harmonic retrieval
carrier frequency offset
author_facet Wang Y
Shi K
Serpedin E
author_sort Wang Y
title Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
title_short Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
title_full Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
title_fullStr Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
title_full_unstemmed Non-Data-Aided Feedforward Carrier Frequency Offset Estimators for QAM Constellations: A Nonlinear Least-Squares Approach
title_sort non-data-aided feedforward carrier frequency offset estimators for qam constellations: a nonlinear least-squares approach
publisher SpringerOpen
series EURASIP Journal on Advances in Signal Processing
issn 1687-6172
1687-6180
publishDate 2004-01-01
description <p/> <p>This paper performs a comprehensive performance analysis of a family of non-data-aided feedforward carrier frequency offset estimators for QAM signals transmitted through AWGN channels in the presence of unknown timing error. The proposed carrier frequency offset estimators are asymptotically (large sample) nonlinear least-squares estimators obtained by exploiting the fourth-order conjugate cyclostationary statistics of the received signal and exhibit fast convergence rates (asymptotic variances on the order of <inline-formula><graphic file="1687-6180-2004-856139-i1.gif"/></inline-formula>, where <inline-formula><graphic file="1687-6180-2004-856139-i2.gif"/></inline-formula> stands for the number of samples). The exact asymptotic performance of these estimators is established and analyzed as a function of the received signal sampling frequency, signal-to-noise ratio, timing delay, and number of symbols. It is shown that in the presence of intersymbol interference effects, the performance of the frequency offset estimators can be improved significantly by oversampling (or fractionally sampling) the received signal. Finally, simulation results are presented to corroborate the theoretical performance analysis, and comparisons with the modified Cram&#233;r-Rao bound illustrate the superior performance of the proposed nonlinear least-squares carrier frequency offset estimators.</p>
topic synchronization
cyclostationary
non-data-aided estimation
harmonic retrieval
carrier frequency offset
url http://dx.doi.org/10.1155/S1110865704403175
work_keys_str_mv AT wangy nondataaidedfeedforwardcarrierfrequencyoffsetestimatorsforqamconstellationsanonlinearleastsquaresapproach
AT shik nondataaidedfeedforwardcarrierfrequencyoffsetestimatorsforqamconstellationsanonlinearleastsquaresapproach
AT serpedine nondataaidedfeedforwardcarrierfrequencyoffsetestimatorsforqamconstellationsanonlinearleastsquaresapproach
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