Uplink Downlink Rate Balancing and Throughput Scaling in FDD Massive MIMO Systems

Itsik Bergel, Yona Perets, Shlomo Shamai

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

In this work we extend the concept of uplink-downlink rate balancing to frequency division duplex (FDD) massive MIMO systems. In uplink-downlink balancing, we use part of the uplink capacity for CSI feedback in order to increase the downlink capacity. We consider a base station with large number antennas serving many single antenna users. We first show that any unused capacity in the uplink can be traded off for higher throughput in the downlink in a system that uses either dirty paper (DP) coding or zero-forcing (ZF) precoding. We then also study the scaling of the system throughput with the number of antennas in cases of Beamforming (BF) Precoding, ZF Precoding, and DP coding. We show that the downlink throughput is proportional to the logarithm of the number of antennas. While, this logarithmic scaling is lower than the linear scaling of the rate in the uplink, it can still bring significant throughput gains. For example, we demonstrate through analysis and simulation that increasing the number of antennas from 4 to 128 will increase the throughput by more than a factor of 5. We also show that a logarithmic scaling of downlink throughput as a function of the number of receive antennas can be achieved even when the number of transmit antennas only increases logarithmically with the number of receive antennas.

Original languageEnglish
Article number7422786
Pages (from-to)2702-2711
Number of pages10
JournalIEEE Transactions on Signal Processing
Volume64
Issue number10
DOIs
StatePublished - 15 May 2016

Bibliographical note

Publisher Copyright:
© 2016 IEEE.

Keywords

  • Massive MIMO
  • cellular communications
  • channel state information feedback
  • frequency division duplex

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