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首页> 外文期刊>IEEE Transactions on Signal Processing >Dual-Domain Adaptive Beamformer Under Linearly and Quadratically Constrained Minimum Variance
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Dual-Domain Adaptive Beamformer Under Linearly and Quadratically Constrained Minimum Variance

机译:线性和二次约束最小方差下的双域自适应波束形成器

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摘要

In this paper, a novel adaptive beamforming algorithm is proposed under a linearly and quadratically constrained minimum variance (LQCMV) beamforming framework, based on a dual-domain projection approach that can efficiently implement a quadratic-inequality constraint with a possibly rank-deficient positive semi-definite matrix, and the properties of the proposed algorithm are analyzed. As an application, relaxed zero-forcing (RZF) beamforming is presented which adopts a specific quadratic constraint that bounds the power of residual interference in the beamformer output with the aid of interference-channel side-information available typically in wireless multiple-access systems. The dual-domain projection in this case plays a role in guiding the adaptive algorithm towards a better direction to minimize the interference and noise, leading to considerably faster convergence. The robustness issue against channel mismatch and ill-posedness is also addressed. Numerical examples show that the efficient use of interference side-information brings considerable gains.
机译:本文在线性和二次约束最小方差(LQCMV)波束形成框架下,提出了一种新颖的自适应波束形成算法,该算法基于双域投影方法,可以有效地实现具有等级不足正半个数的二次不等式约束。定矩阵,并分析了该算法的性质。作为一种应用,提出了一种放松的零强迫(RZF)波束成形,该波束成形采用特定的二次约束,该约束借助无线多址系统中通常可用的干扰信道边信息来限制波束形成器输出中的残余干扰功率。在这种情况下,双域投影在将自适应算法引向更好的方向以最小化干扰和噪声方面起着作用,从而导致收敛速度大大提高。还解决了针对信道不匹配和不适性的鲁棒性问题。数值算例表明,有效利用干扰侧信息带来了可观的收益。

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