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Theoretical Analysis for Extended Target Recovery in Randomized Stepped Frequency Radars

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arxiv 1908.02929 v1 pith:EILAXQNS submitted 2019-08-08 eess.SP

classification eess.SP
keywords recoverytargetrsfrblocksparserange-dopplersparsityextended
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Randomized Stepped Frequency Radar (RSFR) is very attractive for tasks under complex electromagnetic environment. Due to the synthetic high range resolution in RSRFs, a target usually occupies a series of range cells and is called an extended target. To reconstruct the range-Doppler information in a RSFR, previous studies based on sparse recovery mainly exploit the sparsity of the target scene but do not adequately address the extended-target characteristics, which exist in many practical applications. Block sparsity, which combines the sparsity and the target extension, better characterizes a priori knowledge of the target scene in a wideband RSFR. This paper studies the RSFR range-Doppler reconstruction problem using block sparse recovery. Particularly, we theoretically analyze the block coherence and spectral norm of the observation matrix in RSFR and build a bound on the parameters of the radar, under which the exact recovery of the range-Doppler information is guaranteed. Both simulation and field experiment results demonstrate the superiority of the block sparse recovery over conventional sparse recovery in RSFRs.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Joint Radar-Communications Strategies for Autonomous Vehicles

    cs.IT 2019-09 accept novelty 3.0 of 10

    A survey that classifies joint radar-communications designs for autonomous vehicles into four strategy families and analyzes their trade-offs.

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