• DocumentCode
    2040006
  • Title

    Cancellation of power amplifier induced nonlinear self-interference in full-duplex transceivers

  • Author

    Anttila, Lauri ; Korpi, Dani ; Syrjala, Ville ; Valkama, Mikko

  • Author_Institution
    Dept. of Electron. & Commun. Eng., Tampere Univ. of Technol., Tampere, Finland
  • fYear
    2013
  • fDate
    3-6 Nov. 2013
  • Firstpage
    1193
  • Lastpage
    1198
  • Abstract
    Recently, full-duplex (FD) communications with simultaneous transmission and reception on the same channel has been proposed. The FD receiver, however, suffers from inevitable self-interference (SI) from the much more powerful transmit signal. Analogue radio-frequency (RF) and baseband, as well as digital baseband, cancellation techniques have been proposed for suppressing the SI, but so far most of the studies have failed to take into account the inherent nonlinearities of the transmitter and receiver front-ends. To fill this gap, this article proposes a novel digital nonlinear interference cancellation technique to mitigate the power amplifier (PA) induced nonlinear SI in a FD transceiver. The technique is based on modeling the nonlinear SI channel, which is comprised of the nonlinear PA, the linear multipath SI channel, and the RF SI canceller, with a parallel Hammerstein nonlinearity. Stemming from the modeling, and appropriate parameter estimation, the known transmit data is then processed with the developed nonlinear parallel Hammerstein structure and suppressed from the receiver path at digital baseband. The results illustrate that with a given IIP3 figure for the PA, the proposed technique enables higher transmit power to be used compared to existing linear SI cancellation methods. Alternatively, for a given maximum transmit power level, a lower-quality PA (i.e., lower IIP3) can be used.
  • Keywords
    power amplifiers; transceivers; FD communications; FD receiver; PA; RF; SI; analogue radio frequency; cancellation techniques; digital baseband; full duplex transceivers; nonlinear self interference; parallel Hammerstein nonlinearity; parameter estimation; power amplifier; transmit signal; Baseband; Noise; Radio frequency; Receiving antennas; Silicon; Transceivers;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Signals, Systems and Computers, 2013 Asilomar Conference on
  • Conference_Location
    Pacific Grove, CA
  • Print_ISBN
    978-1-4799-2388-5
  • Type

    conf

  • DOI
    10.1109/ACSSC.2013.6810482
  • Filename
    6810482