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Adaptive reduced-rank constrained constant modulus beamforming algorithms based on joint iterative optimization of filters

机译:基于接头迭代优化的滤波器自适应降低级约束恒定模数波束形成算法

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This paper proposes a robust reduced-rank scheme and algorithms for adaptive beamforming based on joint iterative optimization (JIO) of adaptive filters. The scheme provides an efficient way to deal with filters with large number of elements. It consists of a bank of full-rank adaptive filters that forms a transformation matrix and an adaptive reduced-rank filter that operates at the output of the bank of filters. The transformation matrix projects the received vector onto a low-dimension vector, which is processed by the reduced-rank filter to estimate the desired signal. The expressions of the transformation matrix and the reduced-rank weight vector are derived according to the constrained constant modulus (CCM) criterion subject to different constraints. Two low-complexity adaptive algorithms are devised for the implementation of the proposed scheme with different constraints. Simulations are performed to show superior performance of the proposed algorithms in comparison with the existing methods.
机译:本文提出了一种基于自适应滤波器的关节迭代优化(JIO)的自适应波束形成的稳健降低秩序和算法。该方案提供了一种有效的方法来处理具有大量元素的滤波器。它由一组全级自适应滤波器组成,它形成转换矩阵和自适应减速级滤波器,在滤波器库的输出处运行。变换矩阵将接收的向量突出到低维向量上,该向量是由缩减级滤波器处理以估计所需信号。根据经受不同约束的约束常量模量(CCM)标准导出转换矩阵和减级重量向量的表达。设计了两个低复杂性自适应算法,以实现具有不同约束的提出方案。进行模拟以显示与现有方法相比所提出的算法的卓越性能。

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