• DocumentCode
    1149958
  • Title

    Noncoherent ultra-wideband systems

  • Author

    Witrisal, Klaus ; Leus, Geert ; Janssen, Gerard J M ; Pausini, Marco ; Troesch, Florian ; Zasowski, Thomas ; Romme, Jac

  • Volume
    26
  • Issue
    4
  • fYear
    2009
  • fDate
    7/1/2009 12:00:00 AM
  • Firstpage
    48
  • Lastpage
    66
  • Abstract
    The need for low-complexity devices with low-power consumption motivates the application of suboptimal noncoherent ultra-wideband (UWB) receivers. This article provides an overview of the state of the art of recent research activities in this field. It introduces energy detection and autocorrelation receiver front ends with a focus on architectures that perform the initial signal processing tasks in the analog domain, such that the receiver does not need to sample the UWB received signals at Nyquist rate. Common signaling and multiple access schemes are reviewed for both front ends. An elaborate section illustrates various performance tradeoffs to highlight preferred system choices. Practical issues are discussed, including, for low-data-rate schemes, the allowed power allocation per pulse according to the regulator´s ruling and the estimated power consumption of a receiver chip. A large part is devoted to signal processing steps needed in a digital receiver. It starts with synchronization and time-of-arrival estimation schemes, introduces studies about the narrowband interference problem, and describes solutions for high-data-rate and multiple access communications. Drastic advantages concerning complexity and robustness justify the application of noncoherent UWB systems, particularly for low-data-rate systems.
  • Keywords
    radio receivers; signal processing; ultra wideband communication; Nyquist rate; autocorrelation receiver front end; digital receiver; energy detection; low complexity device; low data rate system; low power consumption; multiple access communication; noncoherent UWB system; noncoherent ultra wideband receiver; noncoherent ultra wideband system; signal processing; time-of-arrival estimation; Autocorrelation; Bandwidth; Energy consumption; Energy resolution; Fading; Multipath channels; Signal processing; Signal resolution; Synchronization; Ultra wideband technology;
  • fLanguage
    English
  • Journal_Title
    Signal Processing Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    1053-5888
  • Type

    jour

  • DOI
    10.1109/MSP.2009.932617
  • Filename
    5174497