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Adaptive Beamforming for Vector-Sensor Arrays Based on a Reweighted Zero-Attracting Quaternion-Valued LMS Algorithm

机译:基于加权零吸引四元数值LMS算法的矢量传感器阵列自适应波束形成

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摘要

In this brief, reference signal-based adaptive beamforming for vector sensor arrays consisting of crossed dipoles is studied. In particular, we focus on how to reduce the number of sensors involved in the adaptation so that reduced system complexity and energy consumption can be achieved while an acceptable performance can still be maintained, which is especially useful for large array systems. As a solution, a reweighted zero-attracting quaternion-valued least-mean-square algorithm is proposed. Simulation results show that the algorithm can work effectively for beamforming while enforcing a sparse solution for the weight vector where the corresponding sensors with zero-valued coefficients can be removed from the system.
机译:在本文中,研究了由交叉偶极子组成的矢量传感器阵列的基于参考信号的自适应波束形成。特别是,我们专注于如何减少自适应中涉及的传感器的数量,从而可以在降低系统复杂性和能耗的同时仍保持可接受的性能,这对于大型阵列系统尤其有用。作为解决方案,提出了一种重新加权的零吸引四元数值最小均方算法。仿真结果表明,该算法可以有效地进行波束赋形,同时对权重矢量执行稀疏解,可以从系统中删除系数为零的相应传感器。

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