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Maximum Constrained Directivity of Oversteered End-Fire Sensor Arrays

机译:过度转向的端火传感器阵列的最大约束方向性

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摘要

For linear arrays with fixed steering and an inter-element spacing smaller than one half of the wavelength, end-fire steering of a data-independent beamformer offers better directivity than broadside steering. The introduction of a lower bound on the white noise gain ensures the necessary robustness against random array errors and sensor mismatches. However, the optimum broadside performance can be obtained using a simple processing architecture, whereas the optimum end-fire performance requires a more complicated system (because complex weight coefficients are needed). In this paper, we reconsider the oversteering technique as a possible way to simplify the processing architecture of equally spaced end-fire arrays. We propose a method for computing the amount of oversteering and the related real-valued weight vector that allows the constrained directivity to be maximized for a given inter-element spacing. Moreover, we verify that the maximized oversteering performance is very close to the optimum end-fire performance. We conclude that optimized oversteering is a viable method for designing end-fire arrays that have better constrained directivity than broadside arrays but with a similar implementation complexity. A numerical simulation is used to perform a statistical analysis, which confirms that the maximized oversteering performance is robust against sensor mismatches.
机译:对于具有固定转向和元件间距小于波长一半的线性阵列,独立于数据的波束形成器的端射转向比宽边转向具有更好的方向性。白噪声增益下限的引入确保了针对随机阵列误差和传感器失配的必要鲁棒性。但是,可以使用简单的处理体系结构来获得最佳的宽边性能,而最佳的端射性能则需要更复杂的系统(因为需要复杂的重量系数)。在本文中,我们将过度转向技术重新考虑为简化等距端射阵列的处理架构的一种可能方法。我们提出了一种计算过度转向量和相关实值权重向量的方法,该方法可使约束的方向性对于给定的元素间间距最大化。此外,我们验证了最大化的过度转向性能非常接近最佳的端火性能。我们得出的结论是,优化的过度转向是设计端射阵列的可行方法,该射束阵列的定向性比宽边阵列更好,但实现复杂度却相似。数值模拟用于执行统计分析,该统计分析证实了最大的过度转向性能可抵抗传感器失配。

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