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Improvement of the Simplified Fast Transversal Filter Type Algorithm for Adaptive Filtering | Science Publications

机译:自适应滤波的简化快速横向滤波器类型算法的改进科学出版物

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> Problem statement: In this study, we proposed a new algorithm M-SMFTF for adaptive filtering with fast convergence and low complexity. Approach: It was the result of a simplified FTF type algorithm, where the adaptation gain was obtained only from the forward prediction variables and using a new recursive method to compute the likelihood variable. Results: The computational complexity was reduced from 7L-6L, where L is the finite impulse response filter length. Furthermore, this computational complexity can be significantly reduced to (2L+4P) when used with a reduced P-size forward predictor. Conclusion: This algorithm presented a certain interest, for the adaptation of very long filters, like those used in the problems of echo acoustic cancellation, due to its reduced complexity, its numerical stability and its convergence in the presence of the speech signal.
机译: > 问题陈述:在这项研究中,我们提出了一种新算法M-SMFTF,用于自适应滤波,具有快速收敛和低复杂度的特点。 方法:这是简化的FTF类型算法的结果,其中仅从前向预测变量获得适应增益,并使用新的递归方法来计算似然变量。 结果:计算复杂度从7L-6L降低,其中L是有限脉冲响应滤波器的长度。此外,当与减小的P大小的前向预测器一起使用时,此计算复杂度可以显着降低到(2L + 4P)。 结论:该算法对于适应超长滤波器(如用于回声消除问题的滤波器)具有一定的兴趣,因为它降低了复杂性,数值稳定性以及在存在时的收敛性语音信号。

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