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首页> 外文期刊>EURASIP journal on advances in signal processing >Very low rate scalable speech coding through classified embedded matrix quantization
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Very low rate scalable speech coding through classified embedded matrix quantization

机译:通过分类嵌入式矩阵量化的超低速率可扩展语音编码

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摘要

This paper proposes a scalable speech coding scheme using the embedded matrix quantization of the LSFs in the LPC model. For an efficient quantization of the spectral parameters, two types of codebooks of different sizes are designed and used to encode unvoiced and mixed voicing segments separately. The tree-like structured codebooks of our embedded quantizer, constructed through a cell merging process, help to make a fine-grain scalable speech coder. Using an efficient adaptive dual-band approximation of the LPC excitation, where voicing transition frequency is determined based on the concept of instantaneous frequency in the frequency domain, near natural sounding synthesized speech is achieved. Assessment results, including both overall quality and intelligibility scores show that the proposed coding scheme can be a reasonable choice for speech coding in low bandwidth communication applications.
机译:本文提出了一种在LPC模型中使用LSF的嵌入式矩阵量化的可伸缩语音编码方案。为了有效地量化频谱参数,设计了两种不同大小的码本,并分别用于编码未清音和混合清音片段。通过单元合并过程构造的嵌入式量化器的树状结构码本有助于制作细粒度的可扩展语音编码器。使用LPC激励的高效自适应双带近似(其中基于频域中的瞬时频率的概念确定发声过渡频率),可获得接近自然听起来的合成语音。包括总体质量和清晰度分数在内的评估结果表明,所提出的编码方案可以作为低带宽通信应用中语音编码的合理选择。

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