• DocumentCode
    2208111
  • Title

    Online time delay estimation of pulsar signals for relative navigation using adaptive filters

  • Author

    Emadzadeh, Amir A. ; Lopes, Cassio G. ; Speyer, Jason L.

  • Author_Institution
    Dept. of Electr. Eng., California Univ., Los Angeles, CA
  • fYear
    2008
  • fDate
    5-8 May 2008
  • Firstpage
    714
  • Lastpage
    719
  • Abstract
    Relative navigation of spacecrafts may be accomplished by observing X-ray sources and indirectly determining the spacecraftspsila relative position. In this approach, two spacecrafts lock on a known pulsar which irradiates X-ray waveforms that reach them with a differential time delay that is proportional to the distance between the spacecrafts. By observing different pulsar sources geometrically distributed over the galactic disc, it is possible to determine the spacecraftspsila relative inertial position. Our goal is to estimate their relative position by Time Delay Estimation (TDE) between the detected signals. Although there are several off-line TDE methods, like the basic cross-correlation (BCC) and the generalized cross-correlation (GCC) techniques, in this work we formulate TDE as a channel estimation problem and apply adaptive filtering techniques to estimate the time delay online. There are certain benefits in using adaptive filters, especially when the underlying parameters like signalspsila statistics are unknown or change over time. We study different adaptive algorithms and show how they are able to efficiently deliver accurate delay estimates at reduced computational complexity and in real time.
  • Keywords
    X-ray sources (astronomical); adaptive filters; channel estimation; computational complexity; correlation methods; delay estimation; pulsars; satellite navigation; space vehicles; X-ray sources; X-ray waveforms; adaptive filtering techniques; adaptive filters; basic cross-correlation; channel estimation problem; computational complexity; differential time delay; galactic disc; generalized cross-correlation; online time delay estimation; pulsar signals; pulsar sources; relative inertial position; relative navigation; signal statistics; spacecraft relative position; spacecrafts; Adaptive algorithm; Adaptive filters; Channel estimation; Computational complexity; Delay effects; Delay estimation; Navigation; Signal detection; Space vehicles; Statistics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Position, Location and Navigation Symposium, 2008 IEEE/ION
  • Conference_Location
    Monterey, CA
  • Print_ISBN
    978-1-4244-1536-6
  • Electronic_ISBN
    978-1-4244-1537-3
  • Type

    conf

  • DOI
    10.1109/PLANS.2008.4570029
  • Filename
    4570029