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Frequency averaging: a useful multiwindow spectral analysis approach

机译:频率平均:一种有用的多窗口频谱分析方法

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摘要

The multiwindow approach is a meaningful framework for nonparametric spectral estimation. It also encompasses several conventional methods as WOSA and frequency-averaged periodogram. Recently, some authors claimed that the Slepian windows of Thomson's method and other related optimal sets of windows show a better performance in terms of resolution, variance and leakage. In this paper, that claim is discussed by means of some simulation examples and by applying the various methods to speech recognition. In conclusion, frequency averaging of the periodogram is a computationally simple method that has a great flexibility for band specification and comparatively shows good performance. In fact, it is the spectral analysis technique most extensively employed for speech recognition.
机译:多窗口方法是用于非参数频谱估计的有意义的框架。它还涵盖了几种常规方法,例如WOSA和频率平均周期图。最近,一些作者声称Thomson方法的Slepian窗口和其他相关的最佳窗口集在分辨率,方差和泄漏方面表现出更好的性能。在本文中,将通过一些仿真示例并将该各种方法应用于语音识别来讨论该权利要求。总而言之,周期图的频率平均是一种计算简单的方法,在频带指定方面具有很大的灵活性,并且相对显示出良好的性能。实际上,这是最广泛用于语音识别的频谱分析技术。

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