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Single channel nonstationary signal separation using linear time-varying filters

机译:使用线性时变滤波器的单通道非平稳信号分离

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摘要

Separability of signal mixtures given only one mixture observation is defined as the identification of the accuracy to which the signals can be separated. The paper shows that when signals are separated using the generalized Wiener filter, the degree of separability can be deduced from the signal structure. To identify this structure, the processes are represented on an general spectral domain, and a sufficient solution to the Wiener filter is obtained. The filter is composed of a term independent of the signal values, corresponding to regions in the spectral domain where the desired signal components are not distorted by interfering noise components, and a term dependent on the signal correlations, corresponding to the region where components overlap. An example of determining perfect separability of modulated random signals is given with application in radar and speech processing
机译:仅给出一个混合观测值,信号混合的可分离性就定义为信号分离精度的识别。本文表明,当使用广义维纳滤波器分离信号时,可从信号结构中推导出可分离度。为了识别这种结构,在一般的频谱域上表示这些过程,并获得维纳滤波器的足够解。滤波器由与信号值无关的项(其对应于频谱域中的期望信号分量不会由于干扰噪声分量而失真的区域)和与信号相关性相关的项(与分量重叠的区域相对应)组成。给出了确定调制随机信号的完美可分离性的示例,并在雷达和语音处理中得到了应用

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  • 作者单位
  • 年度 2003
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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