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Analysis and implementation of variable step size adaptive algorithms

机译:变步长自适应算法的分析与实现

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Stochastic gradient adaptive filtering algorithms using variable step sizes are investigated. The variable-step-size algorithm improves the convergence rate while sacrificing little in steady-state error. Expressions describing the convergence of the mean and mean-squared values of the coefficients are developed and used to calculate the mean-square-error evolution. The initial convergence rate and the steady-state error are also investigated. The performance of the algorithm is studied when a power-of-two quantizer algorithm is used, and finite-word-length effects are considered. The analytical results are verified with simulations encompassing variable applications. Two CMOS implementations of the variable-step-size, power-of-two quantizer algorithm are presented to demonstrate that the performance gains are attainable with only a modest increase in circuit complexity.
机译:研究了使用可变步长的随机梯度自适应滤波算法。可变步长算法提高了收敛速度,同时几乎没有牺牲稳态误差。开发了描述系数的均值和均方值收敛的表达式,并将其用于计算均方误差演化。还研究了初始收敛速度和稳态误差。当使用二次幂量化器算法时,研究了算法的性能,并考虑了有限字长的影响。分析结果通过包含变量应用程序的仿真进行了验证。提出了两种CMOS的变步长,2的幂量化器算法,以证明仅在电路复杂度适度增加的情况下就可以获得性能增益。

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