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Relying on critical articulators to estimate vocal tract spectra in an articulatory-acoustic database

机译:依靠批判性的关节者来估算铰接式声学数据库中的声乐谱

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We present a new phone-dependent feature weighting scheme that can be used to map articulatory configurations (e.g. EMA) onto vocal tract spectra (e.g. MFCC) through table lookup. The approach consists of assigning feature weights according to a feature's ability to predict the acoustic distance between frames. Since an articulator's predictive accuracy is phone-dependent (e.g., lip location is a better predictor for bilabial sounds than for palatal sounds), a unique weight vector is found for each phone. Inspection of the weights reveals a correspondence with the expected critical articulators for many phones. The proposed method reduces overall cepstral error by 6% when compared to a uniform weighting scheme. Vowels show the greatest benefit, though improvements occur for 80% of the tested phones.
机译:我们提出了一种新的电话依赖性功能加权方案,可用于通过表查找将剖视配置(例如EMA)映射到声乐谱(例如MFCC)。该方法包括根据特征来指定特征权重,该特征能够预测帧之间的声学​​距离。由于铰接器的预测精度是依赖于电话的(例如,唇部位置是比腭声音的Bilabial声音更好的预测器),每个手机都找到了独特的重量矢量。检查重量揭示了与许多手机的预期关键清晰度的对应关系。与均匀加权方案相比,所提出的方法将整体倒谱误差降低6%。元音显示出最大的好处,尽管有80%的测试电话发生的改进。

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