振幅频谱校正提高语音信号分类质量

Stanislaw Gmyrek, Robert Hossa, Ryszard Makowski
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引用次数: 0

摘要

语音信号可以用三个关键要素来描述:激励信号、声道的脉冲响应以及通过人的嘴唇表示语音产生影响的系统。语音中语义内容的主要载体主要受声带特性的影响。然而,在参数化系数方面,声门激励的不规则周期性是导致特征向量值发生显著变化的一个重要因素,其结果是振幅频谱出现紊乱,出现波纹。本研究提出了一种方法来缓解这一现象。为了实现这一目标,我们采用了反滤波法来估计声道的激励和传递函数。随后,利用推导出的参数化系数,将单个波兰音素建立为高斯分布混合物的统计模型。然后研究了这些修正对波兰语元音分类准确性的影响。对参数化方法的修改达到了预期的效果,特征向量值的散布减少了。
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Amplitude spectrum correction to improve speech signal classification quality
The speech signal can be described by three key elements: the excitation signal, the impulse response of the vocal tract, and a system that represents the impact of speech production through human lips. The primary carrier of semantic content in speech is primarily influenced by the characteristics of the vocal tract. Nonetheless, when it comes to parameterization coefficients, the irregular periodicity of the glottal excitation is a significant factor that leads to notable variations in the values of the feature vectors, resulting in disruptions in the amplitude spectrum with the appearance of ripples. In this study, a method is suggested to mitigate this phenomenon. To achieve this goal, inverse filtering was used to estimate the excitation and transfer functions of the vocal tract. Subsequently, using the derived parameterisation coefficients, statistical models for individual Polish phonemes were established as mixtures of Gaussian distributions. The impact of these corrections on the classification accuracy of Polish vowels was then investigated. The proposed modification of the parameterisation method fulfils the expectations, the scatter of feature vector values was reduced.
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来源期刊
CiteScore
1.50
自引率
14.30%
发文量
0
审稿时长
12 weeks
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