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OFDM Radar Space-Time Adaptive Processing by Exploiting Spatio-Temporal Sparsity

Published: 01 January 2013 Publication History

Abstract

We propose a sparsity-based space-time adaptive processing (STAP) algorithm to detect a slowly-moving target using an orthogonal frequency division multiplexing (OFDM) radar. We observe that the target and interference spectra are inherently sparse in the spatio-temporal domain. Hence, we exploit that sparsity to develop an efficient STAP technique that utilizes considerably lesser number of secondary data and produces an equivalent performance as the other existing STAP techniques. In addition, the use of an OFDM signal increases the frequency diversity of our system, as different scattering centers of a target resonate at different frequencies, and thus improves the target detectability. First, we formulate a realistic sparse-measurement model for an OFDM radar considering both the clutter and jammer as the interfering sources. Then, we apply a residual sparse-recovery technique based on the LASSO estimator to estimate the target and interference covariance matrices, and subsequently compute the optimal STAP-filter weights. Our numerical results demonstrate a comparative performance analysis of the proposed sparse-STAP algorithm with four other existing STAP methods. Furthermore, we discover that the OFDM-STAP filter-weights are adaptable to the frequency-variabilities of the target and interference responses, in addition to the spatio-temporal variabilities. Hence, by better utilizing the frequency variabilities, we propose an adaptive OFDM-waveform design technique, and consequently gain a significant amount of STAP-performance improvement.

Cited By

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  • (2024)A Novel Joint Angle-Range-Velocity Estimation Method for MIMO-OFDM ISAC SystemsIEEE Transactions on Signal Processing10.1109/TSP.2024.344288672(3805-3818)Online publication date: 13-Aug-2024
  • (2019)Joint range and angle estimation for an integrated system combining MIMO radar with OFDM communicationMultidimensional Systems and Signal Processing10.1007/s11045-018-0576-230:2(661-687)Online publication date: 1-Apr-2019
  • (2019)Robust Waveform Optimization for MIMO-OFDM-Based STAP in the Presence of Environmental UncertaintyCircuits, Systems, and Signal Processing10.1007/s00034-018-0916-338:3(1301-1317)Online publication date: 1-Mar-2019
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cover image IEEE Transactions on Signal Processing
IEEE Transactions on Signal Processing  Volume 61, Issue 1
January 2013
213 pages

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IEEE Press

Publication History

Published: 01 January 2013

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Cited By

View all
  • (2024)A Novel Joint Angle-Range-Velocity Estimation Method for MIMO-OFDM ISAC SystemsIEEE Transactions on Signal Processing10.1109/TSP.2024.344288672(3805-3818)Online publication date: 13-Aug-2024
  • (2019)Joint range and angle estimation for an integrated system combining MIMO radar with OFDM communicationMultidimensional Systems and Signal Processing10.1007/s11045-018-0576-230:2(661-687)Online publication date: 1-Apr-2019
  • (2019)Robust Waveform Optimization for MIMO-OFDM-Based STAP in the Presence of Environmental UncertaintyCircuits, Systems, and Signal Processing10.1007/s00034-018-0916-338:3(1301-1317)Online publication date: 1-Mar-2019
  • (2017)Sparse reconstruction-based beampattern synthesis for multi-carrier frequency diverse array antenna2017 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)10.1109/ICASSP.2017.7952786(3395-3398)Online publication date: 5-Mar-2017
  • (2017)Clutter suppression algorithm based on fast converging sparse Bayesian learning for airborne radarSignal Processing10.1016/j.sigpro.2016.06.023130:C(159-168)Online publication date: 1-Jan-2017
  • (2017)Enhanced knowledge-aided spacetime adaptive processing exploiting inaccurate prior knowledge of the array manifoldDigital Signal Processing10.1016/j.dsp.2016.10.00560:C(262-276)Online publication date: 1-Jan-2017
  • (2017)Sparsity-Based Direct Data Domain Space-Time Adaptive Processing with Intrinsic Clutter MotionCircuits, Systems, and Signal Processing10.1007/s00034-016-0301-z36:1(219-246)Online publication date: 1-Jan-2017
  • (2016)Novel Training Sample Selection Methods for SR-STAPProceedings of the 8th International Conference on Signal Processing Systems10.1145/3015166.3015178(154-157)Online publication date: 21-Nov-2016

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