• DocumentCode
    739164
  • Title

    Non-Stationary Propagation Model for Scattering Volumes With an Application to the Rural LMS Channel

  • Author

    Schubert, Frank M. ; Jakobsen, Morten Lomholt ; Fleury, Bernard H.

  • Author_Institution
    Inst. of Commun. & Navig., German Aerosp. Center (DLR), Wessling, Germany
  • Volume
    61
  • Issue
    5
  • fYear
    2013
  • fDate
    5/1/2013 12:00:00 AM
  • Firstpage
    2817
  • Lastpage
    2828
  • Abstract
    The design of efficient positioning algorithms in navigation satellite systems, like GNSS, operating in land mobile environments demands for detailed models of the radio channel. On the one hand, the models need to accurately describe scattering and shadowing/obstruction caused by vegetation. On the other hand, they have to incorporate the steady change in the propagation constellation due to the receiver displacement. In this paper we propose a model of the non-stationary radio channel in a scenario where a mobile receiver drives past a scattering volume, such as a ball or a cuboid, while the transmitter is elevated, like in satellite positioning applications. Such a volume may represent the canopy of a single tree, the canopies of trees in a grove, or a small forest. Scattering by the volume is characterized by means of multiple point-source scatterers that are assumed to form a marked spatial point process. The system functions of the radio channel are given. An integral form of the time-frequency correlation function of the component in the system functions contributed by the scattering volume is obtained as a direct consequence of Campbell´s Theorem. Furthermore, a closed-form approximation of this integral form is derived for time lags corresponding to displacements along the receiver trajectory for which the plane wave assumption holds. The approximation takes into account the steady change in the propagation constellation. The proposed model is validated by means of Monte Carlo simulations and by comparing its prediction capabilities with experimental data in a scenario where a mobile receiver drives past a roadside tree. A good agreement is observed, despite the simplicity of the model.
  • Keywords
    Global Positioning System; Monte Carlo methods; approximation theory; electromagnetic wave scattering; land mobile radio; radio receivers; radio transmitters; radiowave propagation; time-frequency analysis; wireless channels; Campbell theorem; GNSS; Monte Carlo simulation; closed-form approximation; land mobile environment; marked spatial point processing; mobile receiver; multiple point-source scattering; navigation satellite system; nonstationary propagation constellation model; nonstationary radio channel model; plane wave assumption; radio transmitter; rural LMS channel; satellite positioning algorithm; single tree canopy; time-frequency correlation function; vegetation; Least squares approximation; Receivers; Scattering; Solid modeling; Trajectory; Vegetation; Antennas and propagation; channel models; communication channels; electromagnetic propagation; fading; frequency-selective fading channels; multipath channels; radio propagation; radiowave propagation; signal processing;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2013.2242821
  • Filename
    6419778