• DocumentCode
    163311
  • Title

    Experimental Demonstration of RF-Pilot-Based Phase Noise Mitigation for Millimeter-Wave Systems

  • Author

    Jingjing Chen ; Olsson, Bengt-Erik ; Persson, A. ; Hansryd, Jonas

  • Author_Institution
    Radio Access Technol., Ericsson AB, Gothenburg, Sweden
  • fYear
    2014
  • fDate
    14-17 Sept. 2014
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Millimeter-wave bands are gaining popularity for high data rate wireless communication systems due to the wide available bandwidth. However, oscillator phase noise also increases as the carrier frequency increases. Methods of phase noise mitigation are therefore crucial for future millimeter-wave systems. In this work, we propose to adopt analog phase noise mitigation using an RF-pilot tone, which reduces both phase and frequency impairments of an arbitrary millimeter-wave signal at the expense of reduced spectral efficiency. The method is verified experimentally at carrier frequency of 28 GHz and E-band 73 GHz showing a 20 dB noise reduction up to 100 kHz offset. Since the method relaxes phase noise requirement it is attractive for phase noise sensitive technologies at high carrier frequency, such as OFDM used in LTE. As indicated by the simulation results, the reduced phase noise enables a LTE signal on a millimeter-wave carrier with marginal performance impact.
  • Keywords
    Long Term Evolution; interference suppression; millimetre wave oscillators; phase noise; LTE signal; OFDM; RF-pilot tone; analog phase noise mitigation; arbitrary millimeter-wave signal; carrier frequency; frequency 28 GHz; frequency 73 GHz; high data rate wireless communication systems; millimeter-wave systems; oscillator phase noise; phase noise requirement; phase noise sensitive technologies; Band-pass filters; Bandwidth; Millimeter wave technology; Noise measurement; OFDM; Phase noise;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Vehicular Technology Conference (VTC Fall), 2014 IEEE 80th
  • Conference_Location
    Vancouver, BC
  • Type

    conf

  • DOI
    10.1109/VTCFall.2014.6965978
  • Filename
    6965978