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Coding of Parametric Models with Randomized Quantization in a Distributed Speech and Audio Codec

机译:分布式语音和音频编解码器中带有随机量化参数模型的编码

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For efficient distributed coding of speech and audio signals, we need to encode the signal such that each device transmits unique information, to avoid redundancy. In a recent contribution, we have demonstrated that this is possible by application of a randomization operation before quantization of the signal spectrum. The proposed coding however relies on an assumption that the input data follows the normal distribution with zero-mean, whereby it does not directly apply on the coding of the parameters of parametric models of the signal. Importantly, the proposed coding does not preserve signal gain, which thus has to be parametrized and separately transmitted. To avoid overcoding also in transmission of the signal gain and the coefficients of other parametric models, in this paper, we propose a method for mapping parameters to the same probability distribution as spectral coefficients, as well as methods for perceptual weighting of these parameters.
机译:为了对语音和音频信号进行有效的分布式编码,我们需要对信号进行编码,以使每个设备都传输唯一的信息,以避免冗余。在最近的贡献中,我们证明了通过在信号频谱量化之前应用随机化操作,这是可能的。然而,提出的编码依赖于这样的假设,即输入数据遵循零均值的正态分布,因此它不能直接应用于信号参数模型参数的编码。重要的是,提出的编码不能保留信号增益,因此必须进行参数设置并单独发送。为了避免在信号增益和其他参数模型的系数传输中也发生过编码,在本文中,我们提出了一种将参数映射到与频谱系数相同的概率分布的方法,以及这些参数的感知加权方法。

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