独立说话人语音识别系统结构特征的实验评价

Ravi Sankar
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引用次数: 1

摘要

提出了一种基于说话人不变特征测量的独立于说话人的语音识别系统的初步研究。将信号表示为一阶相位平面上的轨迹,从中提取一组特征,分别包括与x轴和y轴的未编码和编码交点数。最近邻聚类和k均值聚类都用于分类。使用正字法(书面)元音数据评估特征集的说话人不变识别。在选择的特征中,未编码的交集数在决策空间中提供了更紧密的聚类,使用最近邻分类的错误率为10%
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental evaluation of structural features for a speaker-independent voice recognition system
A preliminary investigation to evaluate a speaker-independent voice-recognition system based on speaker-invariant feature measurements is presented. The signal is represented as a trajectory in the first-order phase plane, from which a set of features is extracted including uncoded and coded intersection number with the x- and y-axes, respectively. Both nearest-neighbor and K-means clustering are used for classification. The feature set was evaluated for speaker-invariant recognition using an orthographic (written) vowel data. Among the features selected, the uncoded intersection number provided much tighter clustering in the decision space with an error rate of 10% using nearest-neighbor classification.<>
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