Title :
Achievable Rates of FDD Massive MIMO Systems With Spatial Channel Correlation
Author :
Zhiyuan Jiang ; Molisch, Andreas F. ; Caire, Giuseppe ; Zhisheng Niu
Author_Institution :
Tsinghua Nat. Lab. for Inf. Sci. & Technol., Tsinghua Univ., Beijing, China
Abstract :
It is well known that the performance of frequency-division-duplex (FDD) massive MIMO systems with i.i.d. channels is disappointing compared with that of time-division-duplex (TDD) systems, due to the prohibitively large overhead for acquiring channel state information at the transmitter (CSIT). In this paper, we investigate the achievable rates of FDD massive MIMO systems with spatially correlated channels, considering the CSIT acquisition dimensionality loss, the imperfection of CSIT and the regularized-zero-forcing linear precoder. The achievable rates are optimized by judiciously designing the downlink channel training sequences and user CSIT feedback codebooks, exploiting the multiuser spatial channel correlation. We compare our achievable rates with TDD massive MIMO systems, i.i.d. FDD systems, and the joint spatial division and multiplexing (JSDM) scheme, by deriving the deterministic equivalents of the achievable rates, based on the one-ring model and the Laplacian model. It is shown that, based on the proposed eigenspace channel estimation schemes, the rate-gap between FDD systems and TDD systems is significantly narrowed, even approached under moderate number of base station antennas. Compared to the JSDM scheme, our proposal achieves dimensionality-reduction channel estimation without channel pre-projection, and higher throughput for moderate number of antennas and moderate to large channel coherence block length, though at higher computational complexity.
Keywords :
MIMO communication; channel estimation; frequency division multiplexing; precoding; CSIT acquisition dimensionality loss; FDD massive MIMO systems; JSDM scheme; Laplacian model; channel state information at the transmitter; eigenspace channel estimation schemes; frequency-division-duplex massive MIMO systems; joint spatial division and multiplexing scheme; multiuser spatial channel correlation; one-ring model; regularized-zero-forcing linear precoder; Channel estimation; Correlation; Downlink; MIMO; Quantization (signal); Training; Vectors; Feedback codebook design; Frequency-divisionduplex; Massive MIMO systems; Massive multiple-input-multiple-output (MIMO) systems; Spatial channel correlation; Training sequences design; feedback codebook design; frequency-division-duplex; spatial channel correlation; training sequences design;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2015.2396058