MIMO radar target localization and performance evaluation under SIRP clutter

Abstract : Multiple-input multiple-output (MIMO) radar has become a thriving subject of research during the past decades. In the MIMO radar context, it is sometimes more accurate to model the radar clutter as a non-Gaussian process, more specifically, by using the spherically invariant random process (SIRP) model. In this paper, we focus on the estimation and performance analysis of the angular spacing between two targets for the MIMO radar under the SIRP clutter. First, we propose an iterative maximum likelihood as well as an iterative maximum a posteriori estimator, for the target's spacing parameter estimation in the SIRP clutter context. Then we derive and compare various Cramér\textendashRao-like bounds (CRLBs) for performance assessment. Finally, we address the problem of target resolvability by using the concept of angular resolution limit (ARL), and derive an analytical, closed-form expression of the ARL based on Smith's criterion, between two closely spaced targets in a MIMO radar context under SIRP clutter. For this aim we also obtain the non-matrix, closed-form expressions for each of the CRLBs. Finally, we provide numerical simulations to assess the performance of the proposed algorithms, the validity of the derived ARL expression, and to reveal the ARL's insightful properties.
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Signal Processing, Elsevier, 2017, 130, pp.217--232. 〈10.1016/j.sigpro.2016.06.031〉
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Xin Zhang, Mohammed Nabil El Korso, Marius Pesavento. MIMO radar target localization and performance evaluation under SIRP clutter. Signal Processing, Elsevier, 2017, 130, pp.217--232. 〈10.1016/j.sigpro.2016.06.031〉. 〈hal-01421513〉

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