具有去相关特性的基于梯度的回波补偿算法比较

M. Rupp
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引用次数: 1

摘要

使用归一化最小均方(NLMS)算法消除回波已经有很多年的历史了。然而,在声学回波补偿中,通常估计超过1000个参数,导致在语音信号驱动下收敛太慢。为了克服这个缺点,在过去的几年里发布了许多修改,所有这些修改都有一个目标:去关联驾驶过程。从确定性方法开始,我们展示了所有这些不同的想法可以安排在一个方案中,允许统一的规范化。这几种算法的不同性质是显而易见的。比较了几种复杂度为2N-4N的算法。令人惊讶的是,所有的算法都不能完美地工作于一个大的补偿器滤波器长度和语音作为输入过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A comparison of gradient-based algorithms for echo compensation with decorrelating properties
Cancelling echoes by using the normalized least mean square (NLMS) algorithm has been state of the art for many years. In acoustical echo compensation, however, it is common to estimate more than 1000 parameters resulting in a too slow convergence when driven by speech signals. In order to overcome this drawback, a lot of modifications have been published in the last years, all having one goal: to decorrelate the driving process. Beginning with a deterministic approach we show that all these different ideas can be arranged in one scheme, allowing a uniform normalization. The different properties of the several algorithms are then obvious. A comparison of some algorithms with 2N-4N complexity is presented. Surprisingly, all algorithms do not work perfectly for a large compensator filter length and speech as input process.<>
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