• DocumentCode
    879506
  • Title

    Low PAPR square STBCs from complex partial-orthogonal designs (CPODs)

  • Author

    Kumar, Gopu V R Muni ; Rajan, B. Sundar

  • Author_Institution
    Tejas Networks India Ltd., Bangalore
  • Volume
    8
  • Issue
    5
  • fYear
    2009
  • fDate
    5/1/2009 12:00:00 AM
  • Firstpage
    2369
  • Lastpage
    2378
  • Abstract
    Space-time codes from complex orthogonal designs (CODs) with no zero entries offer low Peak to Average Power Ratio (PAPR) and avoid the problem of switching off antennas. But square CODs for 2a antennas with a+1 complex variables, with no zero entries were discovered only for a les 3 and if a+1 = 2k, for k ges 4. In this paper, a method of obtaining no zero entry (NZE) square designs, called Complex Partial-Orthogonal Designs (CPODs), for 2a+1 antennas whenever a certain type of NZE code exists for 2a antennas is presented. Then, starting from a so constructed NZE CPOD for n = 2a+1 antennas, a construction procedure is given to obtain NZE CPODs for 2n antennas, successively. Compared to the CODs, CPODs have slightly more ML decoding complexity for rectangular QAM constellations and the same ML decoding complexity for other complex constellations. Using the recently constructed NZE CODs for 8 antennas our method leads to NZE CPODs for 16 antennas. The class of CPODs do not offer full-diversity for all complex constellations. For the NZE CPODs presented in the paper, conditions on the signal sets which will guarantee full diversity are identified. Simulation results show that bit error performance of our codes is same as that of the CODs under average power constraint and superior to CODs under peak power constraint.
  • Keywords
    block codes; error statistics; maximum likelihood decoding; quadrature amplitude modulation; space-time codes; CPOD; ML decoding complexity; bit error performance; complex partial-orthogonal design; low PAPR square STBC; rectangular QAM constellation; space-time code; Block codes; Councils; Delay; Electronic mail; Information theory; Maximum likelihood decoding; Mercury (metals); Peak to average power ratio; Quadrature amplitude modulation; Signal processing; Complex Orthogonal Designs (COD); Complex Partial-Orthogonal Designs (CPODs); Maximum Likelihood (ML) decoding; Peak-to-Average Power Ratio (PAPR); space-time block codes; transmit diversity;
  • fLanguage
    English
  • Journal_Title
    Wireless Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1276
  • Type

    jour

  • DOI
    10.1109/TWC.2009.070456
  • Filename
    4927452