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Nonlinear Channel Estimation for OFDM System by Complex LS-SVM under High Mobility Conditions

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arxiv 1109.0895 v1 pith:5AVAO4N5 submitted 2011-08-31 cs.LG stat.ML

classification cs.LGstat.ML
keywords highchannelestimationmobilityalgorithmcomplexconditionsfrequency
verification ladder T0 review T1 audit T2 compute T3 formal
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A nonlinear channel estimator using complex Least Square Support Vector Machines (LS-SVM) is proposed for pilot-aided OFDM system and applied to Long Term Evolution (LTE) downlink under high mobility conditions. The estimation algorithm makes use of the reference signals to estimate the total frequency response of the highly selective multipath channel in the presence of non-Gaussian impulse noise interfering with pilot signals. Thus, the algorithm maps trained data into a high dimensional feature space and uses the structural risk minimization (SRM) principle to carry out the regression estimation for the frequency response function of the highly selective channel. The simulations show the effectiveness of the proposed method which has good performance and high precision to track the variations of the fading channels compared to the conventional LS method and it is robust at high speed mobility.

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