Dynamic Time-Frequency Division Duplex

Mohsen Mohammadkhani Razlighi, Nikola Zlatanov, Petar Popovski

Research output: Contribution to journalJournal articleResearchpeer-review

4 Citations (Scopus)

Abstract

In this paper, we introduce dynamic time-frequency-division duplex (D-TFDD), which is a novel duplexing scheme that combines time-division duplex (TDD) and frequency-division duplex (FDD). In D-TFDD, a user receives from the base station (BS) on the downlink in one frequency band and transmits to the BS on the uplink in another frequency band, as in FDD. Next, the user shares its uplink transmission (downlink reception) on the corresponding frequency band with the uplink transmission or the downlink reception of another user in a D-TDD fashion. Hence, in a given frequency band, the BS communicates with user 1 (U1) and user 2 (U2) in a D-TDD fashion. The proposed D-TFDD scheme does not require inter-cell interference (ICI) knowledge and only requires channel state information (CSI) of the local BS-U1 and BS-U2 channels. Thereby, it is practical for implementation. The proposed D-TFDD scheme increases the throughput region between the BS and the two users in a given frequency band, and significantly decreases the outage probabilities on the corresponding BS-U1 and BS-U2 channels. Most importantly, the proposed D-TFDD scheme doubles the diversity gain on both the corresponding BS-U1 and the BS-U2 channels compared to the diversity gain of existing duplexing schemes, which results in very large performance gains.

Original languageEnglish
Article number8985535
JournalI E E E Transactions on Wireless Communications
Volume19
Issue number5
Pages (from-to)3118-3132
Number of pages15
ISSN1536-1276
DOIs
Publication statusPublished - May 2020

Keywords

  • Interference
  • base stations (BSs)
  • downlink
  • dynamic scheduling
  • dynamic time-division duplex (D-TDD)
  • fifth generation (5G) mobile communication
  • resource management
  • signal to noise ratio
  • throughput
  • uplink

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