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A regional multimodulus algorithm for blind equalization of QAM signals: Introduction and steady-state analysis

机译:QAM信号盲均衡的区域多模算法:介绍和稳态分析

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摘要

It is well known that constant-modulus-based algorithms present a large mean-square error for high-order quadrature amplitude modulation (QAM) signals, which may damage the switching to decision-directed-based algorithms. In this paper, we introduce a regional multimodulus algorithm for blind equalization of QAM signals that performs similar to the supervised normalized least-mean-squares (NLMS) algorithm, independently of the QAM order. We find a theoretical relation between the coefficient vector of the proposed algorithm and the Wiener solution and also provide theoretical models for the steady-state excess mean-square error in a nonstationary environment. The proposed algorithm in conjunction with strategies to speed up its convergence and to avoid divergence can bypass the switching mechanism between the blind mode and the decision-directed mode.
机译:众所周知,基于常数模的算法对于高阶正交幅度调制(QAM)信号存在较大的均方误差,这可能会损害切换至基于决策的算法的能力。在本文中,我们介绍了一种用于QAM信号盲均衡的区域多模算法,该算法的执行与监督标准化最小均方(NLMS)算法相似,而与QAM阶无关。我们发现了所提出算法的系数向量与维纳解决方案之间的理论关系,并为非平稳环境下的稳态过量均方误差提供了理论模型。所提出的算法结合加速其收敛和避免差异的策略可以绕过盲模式和决策导向模式之间的切换机制。

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