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A New Method of Voiced/Unvoiced Classification Based on Clustering

机译:基于聚类的有声/无声分类新方法

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In this paper, a new method for making v/uv decision is developed which uses a multi-feature v/uv classification algorithm based on the analysis of cepstral peak, zero crossing rate, and autocorrelation function (ACF) peak of short-time segments of the speech signal by using some clustering methods. This v/uv classifier achieved excellent results for identification of voiced and unvoiced segments of speech.
机译:本文基于短时段的倒谱峰,过零率和自相关函数(ACF)峰的分析,开发了一种使用多特征v / uv分类算法的v / uv决策方法。通过使用一些聚类方法来分析语音信号。该v / uv分类器在识别语音中有声和无声段方面取得了出色的结果。

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