首页> 外文会议>IEEE International Conference on Acoustics, Speech, and Signal Processing >ADAPTIVE FORGETTING FACTOR RECURSIVE LEAST SQUARES ADAPTIVE THRESHOLD NONLINEAR ALGORITHM (AFF-RLS-ATNA) FOR IDENTIFICATION OF NONSTATIONARY SYSTEMS
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ADAPTIVE FORGETTING FACTOR RECURSIVE LEAST SQUARES ADAPTIVE THRESHOLD NONLINEAR ALGORITHM (AFF-RLS-ATNA) FOR IDENTIFICATION OF NONSTATIONARY SYSTEMS

机译:自适应遗忘因子递归最小二乘自适应阈值非线性算法(AFF-RLS-ATNA),用于识别非间断系统

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The recursive least squares (RLS) adaptive algorithm is combined with the "adaptive threshold nonlinear algorithm" (ATNA) proposed by the author, to derive RLS-ATNA, resulting in improvement of the convergence rate of the ATNA that offers robust adaptive filters in impulse noise environments. For application of the RLS-ATNA to identification of random-walk modeled nonstationary systems, an adaptive forgetting factor (AFF) control algorithm is proposed that further improves the tracking performance in the steady state. Through analysis and experiments, the effectiveness of the AFF-RLS-ATNA is demonstrated. Fairly good agreement between the simulation and the theoretically calculated convergence validates the analysis.
机译:递归最小二乘(R1S)自适应算法与作者提出的“自适应阈值非线性算法”(ATNA)组合,以推导RLS-ATNA,从而提高了在脉冲中提供了鲁棒自适应滤波器的ATNA的收敛速度噪声环境。为了应用RLS-ATNA以识别随机步行建模的非间抗系统,提出了一种自适应遗忘因子(AFF)控制算法,其进一步提高了稳态的跟踪性能。通过分析和实验,证明了AFF-RLS-ATNA的有效性。模拟与理论上计算的会聚之间相当愉快的一致性验证了分析。

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