• DocumentCode
    3199984
  • Title

    Timing Acquisition for Non Contiguous OFDM Based Dynamic Spectrum Access

  • Author

    Acharya, Joydeep ; Viswanathan, Harish ; Venkatesan, Sivarama

  • Author_Institution
    Wireless Inf. Networks Lab., Rutgers Univ., North Brunswick, NJ
  • fYear
    2008
  • fDate
    14-17 Oct. 2008
  • Firstpage
    1
  • Lastpage
    10
  • Abstract
    Most current and upcoming communication systems like 802.11x, WiMAX etc. deploy some variant of Orthogonal Frequency Division Multiplexing as their physical layer technology. Symbol timing acquisition is the first operation performed at the receiver after which other signal processing, such as orthogonalizing the received data into parallel streams using Fast Fourier Transform (FFT), can take place. To ensure reliable communication, extensive work has been done in designing robust algorithms that estimate the symbol timing with high accuracy. Most of these works assume that there is some total bandwidth which is utilized by a single user. However in future cognitive radio systems, the spectrum access will be dynamic and multiple devices in a geographical region will sense a common pool of spectrum for the presence of vacant frequency bands to transmit in. In the OFDM context, this means that a device may transmit in non contiguous tones (termed as Non- Contiguous OFDM or NC-OFDM). It is not clear how the existing symbol timing acquisition algorithms will perform in this situation. The current research around cognitive radios is mostly focused on the sensing and resource allocation aspects but to our knowledge the symbol timing acquisition issues have not yet been studied. In this work we study the performance of cyclic prefix correlation based symbol timing acquisition algorithms for NC-OFDM transmission. We first derive the ML estimator when the channel is frequency non-selective and show that it has high computational complexity. Consequently we study the performance of low complexity, sub-optimal approaches both for frequency non-selective and frequency selective channels. Our simulations indicate that in some likely situations such as the users occupying multiple discontiguous sub-bands and having large differences in the timing offsets between their transmitters and receivers, cyclic prefix based timing acquisition algorithms can perform quite poorly. This poin- - ts to the need for better algorithms of reasonable complexity, or entirely different approaches to symbol timing acquisition, for example based on the periodic transmission of known sequences.
  • Keywords
    OFDM modulation; cognitive radio; fast Fourier transforms; maximum likelihood estimation; timing; wireless channels; ML estimator; cognitive radio systems; computational complexity; cyclic prefix correlation; dynamic spectrum access; fast Fourier transform; frequency selective channels; noncontiguous OFDM; orthogonal frequency division multiplexing; symbol timing acquisition algorithms; Algorithm design and analysis; Cognitive radio; Fast Fourier transforms; Frequency estimation; OFDM; Physical layer; Robustness; Signal processing algorithms; Timing; WiMAX;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    New Frontiers in Dynamic Spectrum Access Networks, 2008. DySPAN 2008. 3rd IEEE Symposium on
  • Conference_Location
    Chicago, IL
  • Print_ISBN
    978-1-4244-2016-2
  • Electronic_ISBN
    978-1-4244-2017-9
  • Type

    conf

  • DOI
    10.1109/DYSPAN.2008.57
  • Filename
    4658268