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Range-Angle Decoupling and Estimation for FDA-MIMO Radar via Atomic Norm Minimization and Accelerated Proximal Gradient

机译:通过原子规范最小化和加速近梯度的FDA-MIMO雷达范围角解耦和估计

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摘要

Frequency diverse array multiple-input multiple-output (FDA-MIMO) radar can offer the capability of range-angle-dependent beampattern and enjoy the advantage of effectively resolving the targets closely spaced in the same angle cell but different range cells. However, traditional subspace methods for range-angle estimation fail to efficiently work in a limited number of snapshots and coherent targets. In addition, the coupling between range and angle may lead to the degradation of estimation accuracy with ambiguity problem. In this letter, a gridless compressed sensing-based algorithm is proposed to joint estimate range-angle for FDA-MIMO radar. First, a decoupling model is presented to separate the range and angle from each other. Then, a 2D atomic norm minimization (ANM) problem for range-angle estimation is formulated and transformed into a semi-definite programming (SDP) problem with convex relaxation. Finally, a computationally efficient estimation algorithm via accelerated proximal gradient (APG) is developed to solve the SDP problem. Numerical simulations are conducted to illustrate the superior performance of the proposed algorithm.
机译:频率各种阵列多输入多输出(FDA-MIMO)雷达可以提供范围角依赖的波束图案的能力,并享受有效地解析在同一角度电池但不同范围细胞中紧密间隔的目标的优点。然而,用于范围角度估计的传统子空间方法未能有效地在有限数量的快照和相干目标中工作。另外,范围和角度之间的耦合可能导致估计精度的劣化与模糊问题。在这封信中,提出了一种无缝压缩的基于传感的算法,用于联合估计FDA-MIMO雷达的范围角。首先,提出了解耦模型以将范围和角度彼此分离。然后,将用于范围角估计的2D原子标准最小化(ANM)问题被配制并转换为具有凸松弛的半定编程(SDP)问题。最后,开发了通过加速近端梯度(APG)的计算有效估计算法来解决SDP问题。进行数值模拟以说明所提出的算法的优异性能。

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