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IEICE Transactions on Communications
Online ISSN : 1745-1345
Print ISSN : 0916-8516
Regular Section
Target Scattering Coefficients Estimation in Cognitive Radar under Temporally Correlated Target and Multiple Receive Antennas Scenario
Peng CHENLenan WU
Author information
  • Peng CHEN

    School of Information Science and Engineering, Southeast University
    Department of Electrical Engineering, Columbia University

  • Lenan WU

    School of Information Science and Engineering, Southeast University

Corresponding author

ORCID
Keywords:cognitive radar systems,Kalman filtering,temporally correlated target,multiple receive antennas,waveform optimization
JOURNALRESTRICTED ACCESS

2015 Volume E98.BIssue 9Pages 1914-1923

DOIhttps://doi.org/10.1587/transcom.E98.B.1914
Details
  • Published: September 01, 2015Manuscript Received: December 19, 2014Released on J-STAGE: September 01, 2015Accepted: -Advance online publication: -Manuscript Revised: April 27, 2015
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Abstract
In cognitive radar systems (CRSs), target scattering coefficients (TSC) can be utilized to improve the performance of target identification and classification. This work considers the problem of TSC estimation for temporally correlated target. Multiple receive antennas are adopted to receive the echo waveforms, which are interfered by the signal-dependent clutter. Unlike existing estimation methods in time domain, a novel estimation method based on Kalman filtering (KF) is proposed in frequency domain to exploit the temporal TSC correlation, and reduce the complexity of subsequent waveform optimization. Additionally, to minimize the mean square error of estimated TSC at each KF iteration, in contrary to existing works, we directly model the design process as an optimization problem, which is non-convex and cannot be solved efficiently. Therefore, we propose a novel method, similar in some way to semi-definite programming (SDP), to convert the non-convex problem into a convex one. Simulation results demonstrate that the estimation performance can be significantly improved by the KF estimation with optimized waveform.
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© 2015 The Institute of Electronics, Information and Communication Engineers
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