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Pitch-scaled estimation of simultaneous voiced and turbulence-noisecomponents in speech

机译:语音中同时发声和湍流噪声分量的音调比例估计

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摘要

Almost all speech contains simultaneous contributions from more than one acoustic source within the speaker's vocal tract. In this paper, we propose a method-the pitch-scaled harmonic filter (PSHF)-which aims to separate the voiced and turbulence-noise components of the speech signal during phonation, based on a maximum likelihood approach. The PSHF outputs periodic and aperiodic components that are estimates of the respective contributions of the different types of acoustic source. It produces four reconstructed time series signals by decomposing the original speech signal, first, according to amplitude, and then according to power of the Fourier coefficients. Thus, one pair of periodic and aperiodic signals is optimized for subsequent time-series analysis, and another pair for spectral analysis. The performance of the PSHF algorithm is tested on synthetic signals, using three forms of disturbance (jitter, shimmer and additive noise), and the results were used to predict the performance on real speech. Processing recorded speech examples elicited latent features from the signals, demonstrating the PSHF's potential for analysis of mixed-source speech
机译:几乎所有语音都包含说话人声道内多个声源的同时贡献。在本文中,我们提出了一种音调比例谐波滤波器(PSHF),该方法旨在基于最大似然方法来分离语音信号在发声期间的语音和湍流噪声分量。 PSHF输出周期性和非周期性分量,它们是不同类型声源各自贡献的估计。它首先通过根据幅度然后根据傅立叶系数的幂分解原始语音信号来生成四个重构的时间序列信号。因此,一对周期性和非周期性信号被优化用于随后的时间序列分析,而另一对则用于频谱分析。使用三种形式的干扰(抖动,闪烁和加性噪声)对合成信号测试PSHF算法的性能,并将结果用于预测真实语音的性能。处理记录的语音示例会从信号中引出潜在特征,从而证明PSHF在混合源语音分析中的潜力

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