• DocumentCode
    763663
  • Title

    Pursuer identification and time-to-go estimation using passive measurements from an evader

  • Author

    Lin, L. ; Kirubarajan, T. ; Bar-Shalom, Y.

  • Author_Institution
    United Technol. Res. Center, East Hartford, CT, USA
  • Volume
    41
  • Issue
    1
  • fYear
    2005
  • Firstpage
    190
  • Lastpage
    204
  • Abstract
    We present an algorithm for identifying the parameters of a proportional navigation guidance missile (pursuer) pursuing an airborne target (evader) using angle-only measurements from the latter. This is done for the purpose of classifying the missile so that appropriate counter-measures can be taken. Mathematical models are constructed for a pursuer with a changing velocity, i.e., a direction change and a speed change. Assuming the pursuer is launched from the ground with fixed thrust, its motion can be described by a four-dimensional parameter vector consisting of its proportional navigation constant and three parameters related to thrusting. Consequently, the problem can be solved as a parameter estimation problem, rather than state estimation and we provide an estimator based on maximum likelihood (ML) to solve it. The parameter estimates obtained can be mapped into the time-to-go until intercept estimation results are presented for different scenarios together with the Cramer-Rao lower bound (CRLB), which quantifies the best achievable estimation accuracy. The accuracy of the time-to-go estimate is also obtained. Simulation results demonstrate that the proposed estimator is efficient by meeting the CRLB.
  • Keywords
    angular measurement; maximum likelihood estimation; military aircraft; missiles; target tracking; 4D parameter vector; Cramer-Rao lower bound; airborne target; angle-only measurements; direction change; evader; maximum likelihood; missile classification; parameter estimation; parameter identification; passive measurements; proportional navigation constant; proportional navigation guidance missile; pursuer identification; speed change; state estimation; time-to-go estimate; time-to-go estimation; Acceleration; Computer vision; Equations; Goniometers; Mathematical model; Maximum likelihood estimation; Missiles; Navigation; Parameter estimation; State estimation;
  • fLanguage
    English
  • Journal_Title
    Aerospace and Electronic Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9251
  • Type

    jour

  • DOI
    10.1109/TAES.2005.1413756
  • Filename
    1413756