• DocumentCode
    3112897
  • Title

    FaSTAP™ : A scalable anti-jam architecture for GPS

  • Author

    Reed, Chris W. ; Van Wechel, Robert ; Johnston, Ivan ; Baeder, Brian ; Hogan, Edwin

  • Author_Institution
    L-3 Commun./IEC, Anaheim, CA, USA
  • fYear
    2004
  • fDate
    26-29 April 2004
  • Firstpage
    496
  • Lastpage
    502
  • Abstract
    This paper describes FaSTAP™, a scalable architecture for suppression of GPS interference. FaSTAP is a novel, reduced complexity implementation of fully-adaptive space-time adaptive processing (STAP). The architecture is well-suited to low-power operation with most of the processing in a single ASIC or FPGA. A variety of methods for adaptive weight computation can be supported, including sample matrix inversion (SMI). A four-channel ASIC has been created that performs STAP beamforming or ing with up to seven time taps. The design is scalable to other systems with parameter changes in VHDL (3 and 7 channel FPGAs have been produced). The design supports between one and seven STAP time taps, which is selectable by software, but larger tap lengths can be accommodated with minor changes. Test results are provided that demonstrate the performance against a variety of wideband and narrowband jamming types. Additional simulations are shown that demonstrate the performance improvement in multipath of FaSTAP compared with space-frequency adaptive processing (SFAP).
  • Keywords
    Global Positioning System; electromagnetic interference; electronic countermeasures; satellite navigation; space-time adaptive processing; FPGA; FaSTAP™; GPS; fully-adaptive space-time adaptive processing; low-power operation; reduced complexity implementation; sample matrix inversion; scalable anti-jam architecture; single ASIC; tap lengths; Application specific integrated circuits; Array signal processing; Computer architecture; Field programmable gate arrays; Global Positioning System; Interference suppression; Jamming; Narrowband; Testing; Wideband;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Position Location and Navigation Symposium, 2004. PLANS 2004
  • Print_ISBN
    0-7803-8416-4
  • Type

    conf

  • DOI
    10.1109/PLANS.2004.1309034
  • Filename
    1309034