• DocumentCode
    2581223
  • Title

    Architecture for asymmetric collaborative navigation

  • Author

    Zhen Zhu ; Roumeliotis, Stergios ; Hesch, Joel ; Park, Han ; Venable, Don

  • Author_Institution
    Northrop Grumman Corp., Woodland Hills, CA, USA
  • fYear
    2012
  • fDate
    23-26 April 2012
  • Firstpage
    777
  • Lastpage
    782
  • Abstract
    Under the Air Force Research Laboratory (AFRL) Collaborative Robust Integrated Sensor Positioning (CRISP) program, Northrop Grumman Corporation (NGC) is designing and building a collaborative navigation system for multiple airborne platforms. The collaborative navigation architecture has been designed to take advantage of AFRL´s Layered Sensing construct which enables platforms to share information. In particular, the ability to share GPS, relative range, imagery, geo-registered maps, and other measurements opens up many opportunities to improve the navigational accuracy and the robustness to GPS-denied conditions. In the CRISP program, the collaborative navigation system is being designed to be more robust and accurate by leveraging the asymmetry in the sensing, computation, and communication capabilities of disparate platforms. For example, the system takes advantage of higher performing sensors on the high-flyer (HF) platform, which are less susceptible to jamming, and cameras that generate larger sensor footprint and higher resolution images of the terrain. The low-flyers (LFs) have poorer navigation sensors, are more likely to be jammed, and have a more limited view of the terrain. Under this scenario, the HF may assist one or more LFs such that they, too, can have similar accuracy as the HF in a GPS-denied environment.
  • Keywords
    Global Positioning System; sensors; AFRL; CRISP program; GPS-denied conditions; HF platform; LF; NGC; air force research laboratory; asymmetric collaborative navigation system; collaborative robust integrated sensor positioning program; communication capabilities; disparate platforms; georegistered maps; high-flyer platform; larger sensor footprint; low-flyers; northrop grumman corporation; Cameras; Collaboration; Detectors; Hafnium; Navigation; Robustness; Synchronization; asymmetric; collaborative navigation; layered sensing; vision-aided;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Position Location and Navigation Symposium (PLANS), 2012 IEEE/ION
  • Conference_Location
    Myrtle Beach, SC
  • ISSN
    2153-358X
  • Print_ISBN
    978-1-4673-0385-9
  • Type

    conf

  • DOI
    10.1109/PLANS.2012.6236955
  • Filename
    6236955