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A fast determination of stochastic excitation without codebook search in CELP coder

机译:CELP编码器中无需码本搜索即可快速确定随机激励

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摘要

The major drawback of the code excitation linear prediction (CELP) coder is computational complexity that finds the best excitation vector from a stochastic codebook. To provide a synthesized speech signal with reasonable quality, the size of the stochastic codebook should be large. For this reason, the search becomes highly complex. To overcome this difficulty, several methods have been proposed. In this paper, we consider a method that enables us to directly determine the stochastic excitation vector without a codebook search. The stochastic excitation vector has been determined by projection onto a subspace that is obtained using the Karhunen-Loeve (K-L) expansion and the spectral property of the random excitation residual vector. Since the excitation vector can be determined without a codebook search, the computational complexity becomes low. From experimental results, it is shown that the proposed coder provides a synthesized speech signal that is quite comparable in quality to that of the conventional CELP coder with low computational complexity.
机译:码激励线性预测(CELP)编码器的主要缺点是计算复杂性,它会从随机码本中找到最佳激励矢量。为了提供具有合理质量的合成语音信号,随机码本的大小应该很大。因此,搜索变得非常复杂。为了克服这个困难,已经提出了几种方法。在本文中,我们考虑了一种无需代码本搜索即可直接确定随机激励矢量的方法。随机激励矢量已通过投影到使用Karhunen-Loeve(K-L)展开和随机激励残差矢量的光谱特性获得的子空间中来确定。由于可以在不进行码本搜索的情况下确定激励矢量,因此计算复杂度降低。从实验结果表明,所提出的编码器提供了合成语音信号,其质量与低计算复杂度的传统CELP编码器相当。

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