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Sparse Array Angle Estimation Using Reduced-Dimension ESPRIT-MUSIC in MIMO Radar

机译:稀疏阵列角度估计,使用MIMO雷达中的减尺eSprit-Music

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Sparse linear arrays provide better performance than the filled linear arrays in terms of angle estimation and resolution with reduced size and low cost. However, they are subject to manifold ambiguity. In this paper, both the transmit array and receive array are sparse linear arrays in the bistatic MIMO radar. Firstly, we present an ESPRIT-MUSIC method in which ESPRIT algorithm is used to obtain ambiguous angle estimates. The disambiguation algorithm uses MUSIC-based procedure to identify the true direction cosine estimate from a set of ambiguous candidate estimates. The paired transmit angle and receive angle can be estimated and the manifold ambiguity can be solved. However, the proposed algorithm has high computational complexity due to the requirement of two-dimension search. Further, the Reduced-Dimension ESPRIT-MUSIC (RD-ESPRIT-MUSIC) is proposed to reduce the complexity of the algorithm. And the RD-ESPRIT-MUSIC only demands one-dimension search. Simulation results demonstrate the effectiveness of the method.
机译:稀疏线性阵列在角度估计和分辨率方面提供比填充的线性阵列更好的性能,并且具有减小的尺寸和低成本。但是,它们受到多种歧义的影响。在本文中,发射阵列和接收阵列都是双面MIMO雷达中的稀疏线性阵列。首先,我们介绍了一种ESPRIT-MASE方法,其中使用ESPRIT算法来获得模糊的角度估计。消歧算法使用基于音乐的过程来识别来自一组模糊候选估计的真正方向余弦估计。可以估计成对的发射角和接收角度,并且可以解决歧管歧义。然而,由于需要二维搜索,所提出的算法具有高的计算复杂性。此外,提出了减少尺寸ESPRIT-MUSIC(RD-ESPRIT-MUSIC)以降低算法的复杂性。并且RD-ESPRIT-MUSIC仅要求一维搜索。仿真结果证明了该方法的有效性。

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