<p>We propose a cross-subcarrier precoder design (CSPD) for massive multiple-input multiple-output (MIMO) orthogonal frequency division multiplexing (OFDM) downlink. This work aims to significantly improve the channel estimation and signal detection performance by enhancing the smoothness of the frequency domain effective channel. This is accomplished by designing a few vectors known as the transform domain precoding vectors (TDPVs), which are then transformed into the frequency domain to generate the precoders for a set of subcarriers. To combat the effect of channel aging, the TDPVs are optimized under imperfect channel state information (CSI). The optimal precoder structure is derived by maximizing an upper bound of the ergodic weighted sum-rate (WSR) and utilizing the a posteriori beam-based statistical channel model (BSCM). To avoid the large-dimensional matrix inversion, we propose an algorithm with symplectic optimization. Simulation results indicate that the proposed cross-subcarrier precoder design significantly outperforms conventional methods.</p>

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Cross-subcarrier precoder design for massive MIMO-OFDM downlink with symplectic optimization

  • Yuxuan Zhang,
  • An-An Lu,
  • Xiang-Gen Xia,
  • Xiqi Gao

摘要

We propose a cross-subcarrier precoder design (CSPD) for massive multiple-input multiple-output (MIMO) orthogonal frequency division multiplexing (OFDM) downlink. This work aims to significantly improve the channel estimation and signal detection performance by enhancing the smoothness of the frequency domain effective channel. This is accomplished by designing a few vectors known as the transform domain precoding vectors (TDPVs), which are then transformed into the frequency domain to generate the precoders for a set of subcarriers. To combat the effect of channel aging, the TDPVs are optimized under imperfect channel state information (CSI). The optimal precoder structure is derived by maximizing an upper bound of the ergodic weighted sum-rate (WSR) and utilizing the a posteriori beam-based statistical channel model (BSCM). To avoid the large-dimensional matrix inversion, we propose an algorithm with symplectic optimization. Simulation results indicate that the proposed cross-subcarrier precoder design significantly outperforms conventional methods.