JOURNAL ARTICLE

Adaptive Extended Kalman Filter For Ballistic Missile Tracking

Gaurav KumarDharmbir PrasadRudra Pratap Singh

Year: 2017 Journal:   Zenodo (CERN European Organization for Nuclear Research)   Publisher: European Organization for Nuclear Research

Abstract

In the current work, adaptive extended Kalman filter (AEKF) is presented for solution of ground radar based ballistic missile (BM) tracking problem in re-entry phase with unknown ballistic coefficient. The estimation of trajectory of any BM in re-entry phase is extremely difficult, because of highly non-linear motion of BM. The estimation accuracy of AEKF has been tested for a typical test target tracking problem adopted from literature. Further, the approach of AEKF is compared with extended Kalman filter (EKF). The simulation result indicates the superiority of the AEKF in solving joint parameter and state estimation problems.

Keywords:
Ballistic missile Control theory (sociology) Extended Kalman filter Tracking (education) Kalman filter Trajectory Missile Phase (matter) Filter (signal processing)

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