• DocumentCode
    1209981
  • Title

    Low-rate channel coding with complex-valued block codes

  • Author

    Dekorsy, Armin ; Kuehn, Volker ; Kammeyer, Karl-Dirk

  • Author_Institution
    Bell Labs Innovations, Lucent Technol. Network Syst. GmbH, Nuremberg, Germany
  • Volume
    51
  • Issue
    5
  • fYear
    2003
  • fDate
    5/1/2003 12:00:00 AM
  • Firstpage
    800
  • Lastpage
    809
  • Abstract
    This paper addresses aspects of channel coding in orthogonal frequency-division multiplexing-code-division multiple access (OFDM-CDMA) uplink systems where each user occupies a bandwidth much larger than the information bit rate. This inherent bandwidth expansion allows the application of powerful low-rate codes under the constraint of low decoding costs. Three different coding strategies are considered: the combination of convolutional and repetition codes, the code-spread system consisting of one single very low-rate convolutional code and a serial concatenation of convolutional, Walsh-Hadamard and repetition code. The latter scheme is improved by combining the Walsh-Hadamard codes with an additional M-phase-shift keying modulation resulting in complex-valued Walsh-Hadamard codes (CWCs). Analytical performance evaluations will be given for these codes for the first time. The application of CWCs as inner codes in a serial code concatenation is also addressed. We derive a symbol-by-symbol maximum a posteriori decoding algorithm in the complex signal space in order to enable iterative decoding for the entire code. A comprehensive performance analysis by simulation of all the proposed coding schemes shows that the Walsh-Hadamard-based schemes are the best choice for low-to-medium system load. Note that even for fully loaded OFDM-CDMA systems, the concatenation with an inner complex-valued Walsh-Hadamard code leads to a bit-error rate less than 10-5 for an Eb/N0 of about 6 dB.
  • Keywords
    Hadamard codes; OFDM modulation; Rayleigh channels; block codes; cellular radio; code division multiple access; concatenated codes; convolutional codes; error statistics; iterative decoding; maximum likelihood decoding; multiuser channels; phase shift keying; spread spectrum communication; BER; GSM standard; M-phase-shift keying; OFDM-CDMA; Rayleigh fading channel; bandwidth expansion; bit-error rate; code-division multiple access; code-spread system; complex-valued Walsh-Hadamard codes; complex-valued block codes; convolutional code; convolutional codes; information bit rate; inner codes; iterative decoding; low decoding costs; low-rate channel coding; low-rate codes; maximum a posteriori decoding algorithm; mobile communication system; orthogonal frequency-division multiplexing; performance evaluation; repetition code; repetition codes; serial concatenation code; simulation; uplink systems; Bandwidth; Bit rate; Block codes; Channel coding; Convolution; Convolutional codes; Costs; Frequency division multiplexing; Iterative decoding; Performance analysis;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2003.811417
  • Filename
    1201515