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System and method of compression/decompressing a speech signal by using split vector quantization and scalar quantization

机译:通过使用分离向量量化和标量量化来压缩/解压缩语音信号的系统和方法

摘要

Apparatus for processing acoustic features extracted from a sample of speech data forming a feature vector signal every frame period includes a first linear prediction analyzer, a vector quantizer, at least one partitioned vector quantizer and a scalar quantizer. The first linear prediction analyzer performs a linear prediction analysis on the feature vector signal to generate a first error vector signal. Next, the vector quantizer performs a vector quantization on the first error signal thereby generating a first index corresponding to a first prestored vector signal which is an approximation of the first error vector signal. The vector quantizer also generates a residual vector signal which is the difference between the first error vector signal and the first prestored approximation vector signal. Next, the at least one partitioned vector quantizer performs a partitioned vector quantization on a first portion of the residual vector signal thereby generating at least one second index corresponding to a second prestored vector signal which is an approximation of the first portion of the residual vector signal. Next, the scalar quantizer performs a scalar quantization on a second portion of the residual vector signal thereby generating a third index corresponding to a prestored scalar signal which is an approximation of the second portion of the residual vector signal. The first, second and third indices are combined to form an encoded vector signal which is a compressed representation of the feature vector signal. The encoded vector signal may be transmitted and/or stored as desired. The feature vector signal may be reconstructed from the encoded vector signal by adding the corresponding prestored signals to the encoded vector signal to form a decompressed representation of the feature vector signal.
机译:用于处理从每帧周期形成特征矢量信号的语音数据样本中提取的声学特征的设备包括第一线性预测分析器,矢量量化器,至少一个分区矢量量化器和标量量化器。第一线性预测分析器对特征向量信号执行线性预测分析,以生成第一误差向量信号。接下来,矢量量化器对第一误差信号执行矢量量化,从而生成与第一预存储矢量信号相对应的第一索引,该第一索引是第一误差矢量信号的近似值。向量量化器还产生残余向量信号,该残余向量信号是第一误差向量信号与第一预存储的近似向量信号之间的差。接下来,至少一个分区矢量量化器对残余矢量信号的第一部分执行分区矢量量化,从而生成与第二预存储矢量信号相对应的至少一个第二索引,该第二索引是残余矢量信号的第一部分的近似值。接下来,标量量化器对残余矢量信号的第二部分执行标量量化,从而生成与预存储的标量信号相对应的第三索引,该第三索引是残余矢量信号的第二部分的近似值。第一,第二和第三索引被组合以形成编码的矢量信号,该编码的矢量信号是特征矢量信号的压缩表示。编码的矢量信号可以根据需要被发送和/或存储。通过将相应的预存储信号添加到编码矢量信号以形成特征矢量信号的解压缩表示,可以从编码矢量信号重构特征矢量信号。

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