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Robust Precoding with Bayesian Error Modeling for Limited Feedback MU-MISO Systems

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http://hdl.handle.net/2183/15464
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Título
Robust Precoding with Bayesian Error Modeling for Limited Feedback MU-MISO Systems
Autor(es)
Joham, Michael
Castro-Castro, Paula-María
Castedo, Luis
Wolfgang, Utschick
Fecha
2010
Cita bibliográfica
Joham, M., Castro-Castro, Paula María, Castedo, L. & Utschick, W. 2010, "Robust precoding with Bayesian error modeling for limited feedback MU-MISO systems", IEEE Transactions on Signal Processing, vol. 58, no. 9, pp. 4954-4960.
Resumen
[Abstract] We consider the robust precoder design for multiuser multiple-input single-output (MU-MISO) systems where the channel state information (CSI) is fed back from the single antenna receivers to the centralized transmitter equipped with multiple antennas. We propose to compress the feedback data by projecting the channel estimates onto a vector basis, known at the receivers and the transmitter, and quantizing the resulting coefficients. The channel estimator and the basis for the rank reduction are jointly optimized by minimizing the mean-square error (MSE) between the true and the rank-reduced CSI. Expressions for the conditional mean and the conditional covariance of the channel are derived which are necessary for the robust precoder design. These expressions take into account the following sources of error: channel estimation, truncation for rank reduction, quantization, and feedback channel delay. As an example for the robust problem formulation, vector precoding (VP) is designed based on the expectation of the MSE conditioned on the fed-back CSI. Our results show that robust precoding based on fed-back CSI clearly outperforms conventional precoding designs which do not take into account the errors in the CSI.
Palabras clave
Bayesian methods
Channel estimation
Channel state information
Limited rate feedback
Vector broadcast channel
Vector quantisation
Receiving antennas
Precoding
Mean square error methods
Channel estimation
Antenna arrays
MIMO communication
Bayes methods
 
Descripción
The final publication is available http://dx.doi.org/10.1109/TSP.2010.2052046
Versión del editor
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=5482105
ISSN
1053-587X (Print)
1941-0476 (On line)
 

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