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首页> 外文期刊>IEEE Transactions on Circuits and Systems. II >New FIR adaptive filtering algorithm based on quantized gradients and least-squares convergence factors
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New FIR adaptive filtering algorithm based on quantized gradients and least-squares convergence factors

机译:基于量化梯度和最小二乘收敛因子的FIR自适应滤波新算法

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摘要

A new FIR adaptive filtering algorithm, using quantized gradients with a variable convergence factor that minimizes an exponentially weighted sum square error, is proposed. The proposed algorithm converges about as fast as the optimum block adaptive shifting algorithm does. However, when effective reusing data length due to the exponential weighting is a power-of-two number, the proposed algorithm requires a much smaller number of multiplications and divisions.
机译:提出了一种新的FIR自适应滤波算法,该算法使用具有可变收敛因子的量化梯度来最小化指数加权和平方误差。所提出的算法收敛速度与最佳块自适应移位算法一样快。但是,当由于指数加权而导致的有效重用数据长度为2的幂时,所提出的算法所需的乘法和除法次数要少得多。

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