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Multiple time-scale estimates of Lyon's auditory features for non-intrusive speech quality assessment

机译:Lyon对非侵入式语音质量评估的听觉特征多次估计

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In this work, multiple time-scale estimates of auditory features have been introduced to capture the effect of short time-transients additive noise present over some specific active regions in a speech utterance and these multiple time-scale auditory features have been used for non-intrusive speech quality measurement. The use of single time-scale auditory features is not accurate in capturing the time localized information of short-time transient distortions and their distinction from plosive sounds of speech. Hence, the importance of estimating auditory features at multiple time-scales that is relevant for objective non-intrusive speech quality estimation. The different active speech segments obtained from voice activity detection (VAD) algorithm of speech utterance are combined across the segments in increasing number of active speech segments till all the segments of complete speech utterance are accounted for. The Lyon's auditory features of the combination of active speech segments are computed on frame by frame basis. The mean, variance, skewness and kurtosis over the frames of the auditory features are computed and concatenated to obtain multiple time-scale estimates of auditory features for the different combination active speech segments. These multiple time-scale auditory features are probabilistically modeled using Gaussian Mixture Model (GMM) to map into mean opinion score (MOS) value for each combination of active speech segments. The overall objective MOS of the degraded speech is obtained by taking average of MOS values of the combination of active speech segments. A detailed result comparison has been done with the ITU-T Recommendation P.563 for telephone band speech.
机译:在这项工作中,已经引入了多个时间级估计听觉特征的估计,以捕获语音话语中的一些特定活动区域上存在的短时间瞬态添加剂噪声的效果,并且这些多个时间尺度听觉特征已经用于非 - 侵入性语音质量测量。在捕获短时瞬态扭曲的时间内信息以及它们与陷性发言的区别时,单一时间级听觉特征的使用不准确。因此,在与客观非侵入式语音质量估计相关的多个时间量表中估计听觉特征的重要性。从语音活动检测(VAD)算法中获得的不同主动语音段在越来越多的主动语音段中的段中组合在段中,直到都被占所有语音话语的段。 Lyon的主动语音段组合的听觉特征在帧的基础上计算。对听觉特征帧的平均值,方差,偏斜和峰度被计算和连接,以获得不同组合活动语音段的多个时间尺度估计。这些多个时间尺度听觉特征是使用高斯混合模型(GMM)的概率模型,以映射到每个活动语音段的每个组合的平均意见分数(MOS)值。通过接受有源语音段的组合的MOS值来获得降级语音的整体目标MOS。对电话频带语音的ITU-T建议书P.563进行了详细的结果比较。

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