Two Timescale Robust Energy-Efficient Precoding for Dual-Polarized MIMO Systems

  • Yongjia Jin
  • , Xue Yin
  • , Ziyi Yang*
  • *Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Abstract

In this chapter, we investigate in depth the two-timescale robust system EE precoding design for the multiuser dual-polarized MIMO system. To achieve good performance, low feedback overhead as well as low implementation complexity, the dual-structured linear precoding scheme is adopted, which is based on the two timescale CSI and the dual-polarized antenna structure. The subgrouping technique, which is based on polarization, is also utilized to divide spatially grouped users into co-polarized subgroups to further reduce channel feedback overhead. The proposed robust system EE precoding design can achieve the maximization of the worst-case system EE, with the norm-bounded channel errors of all users. This robust EE optimization is naturally decomposed into two parts. In the first part, based on the polarized spatial correlation information, the block diagonalization is utilized to design the preprocessing matrix. In the second part, based on the relationship between the mean square error and the signal-to-interference-plus-noise ratio, the linear precoding matrix can be optimized by utilizing the sign-definiteness lemma and the fractional programming technique. Specifically, the corresponding nonconvex EE fractional optimization problem is converted to a series of SDP problems, which are solved by the convex optimization method efficiently. Simulation results indicate that the proposed two timescale based dual-structured precoding has many advantages on the robust system EE performance in the dual-polarized multiuser MIMO system.

Original languageEnglish
Title of host publicationPerformance Analysis and Improvement in MIMO Communication Systems
PublisherSpringer Science+Business Media
Pages127-156
Number of pages30
ISBN (Electronic)9789819659517
ISBN (Print)9789819659500
DOIs
Publication statusPublished - 1 Jan 2025

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