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Efficient waveform covariance matrix design and antenna selection for MIMO radar

机译:用于MIMO雷达的高效波形协方差矩阵设计和天线选择

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摘要

Controlling the radar beam-pattern by optimizing the transmit covariance matrix is a well-established approach for performance enhancement in multiple-input-multiple-output (MIMO) radars. In this paper, we investigate the joint optimization of the waveform covariance matrix and the antenna position vector for a MIMO radar system to approximate a given transmit beam-pattern, as well as to minimize the cross-correlation between the probing signals at a number of given target locations. We formulate this design task as a non-convex optimization problem and then propose a cyclic optimization approach to efficiently approximate its solution. We further propose a local binary search algorithm in order to efficiently design the corresponding antenna positions. We show that the proposed method can be extended to the more general case of approximating the given beam-pattern using a minimal number of antennas as well as optimizing their positions. Our numerical investigations demonstrate a great performance both in terms of accuracy and computational complexity, making the proposed framework a good candidate for usage in real-time radar waveform processing applications such as MIMO radar transmit beamforming for aerial drones that are in motion.
机译:通过优化发射协方差矩阵来控制雷达光束图案是多输入多输出(MIMO)雷达中的性能增强的良好方法。在本文中,我们研究了MIMO雷达系统的波形协方差矩阵和天线位置矢量的联合优化,以近似给定的发射波束图案,以及最小化探测信号之间的互相关给定目标位置。我们将该设计任务制订为非凸优化问题,然后提出了一种循环优化方法,以有效地近似其解决方案。我们进一步提出了一种本地二进制搜索算法,以便有效地设计相应的天线位置。我们表明,所提出的方法可以扩展到使用最小数量的天线近似于给定波束模式的更常规情况以及优化它们的位置。我们的数值调查在准确性和计算复杂性方面都表现出良好的性能,使得建议的框架在实时雷达波形处理应用中的良好候选者,例如MIMO雷达发射波束成形,用于运动中的空中无滑道。

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