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首页> 外文期刊>Circuits and Systems II: Express Briefs, IEEE Transactions on >Robust Quasi-Newton Adaptive Filtering Algorithms
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Robust Quasi-Newton Adaptive Filtering Algorithms

机译:鲁棒的拟牛顿自适应滤波算法

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摘要

Two robust quasi-Newton (QN) adaptive filtering algorithms that perform well in impulsive-noise environments are proposed. The new algorithms use an improved estimate of the inverse of the autocorrelation matrix and an improved weight-vector update equation, which lead to improved speed of convergence and steady-state misalignment relative to those achieved in the known QN algorithms. A stability analysis shows that the proposed algorithms are asymptotically stable. The proposed algorithms perform data-selective adaptation, which significantly reduces the amount of computation required. Simulation results presented demonstrate the attractive features of the proposed algorithms.
机译:提出了两种在脉冲噪声环境下性能良好的鲁棒拟牛顿(QN)自适应滤波算法。新算法使用自相关矩阵逆的改进估计和改进的权重向量更新方程,与已知的QN算法相比,可以提高收敛速度和稳态失准。稳定性分析表明,所提出的算法是渐近稳定的。所提出的算法执行数据选择适配,这大大减少了所需的计算量。给出的仿真结果证明了所提出算法的吸引人的特征。

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