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Accelerating the Convergence of the Widely Linear LMS Algorithm for Channel Equalization

机译:加速广泛线性LMS算法的通道均衡算法的收敛性

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摘要

In this paper, we investigate the use of some classical techniques for accelerating the convergence of the LMS algorithm in widely linear (WL) adaptive processing. The application of channel equalizing is considered. Simulation results permit to verify that the normalized LMS strategy presents the best performance as far as a reduction of the trade-off between the convergence rate and steady-state error is concerned.
机译:在本文中,我们研究了一些经典技术来加速LMS算法在广泛的线性(WL)自适应处理中的收敛。考虑信道均衡的应用。仿真结果允许验证标准化的LMS策略是否符合收敛率与稳态误差之间的权衡的降低,呈现最佳性能。

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