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A general contrast function based blind source separation method for convolutively mixed independent sources

机译:基于通用对比度函数的盲源分离方法

摘要

This paper presents a time-domain blind source separation algorithm based on the criterion of the general contrast function. The algorithm extends the efficient fixed-point algorithm for instantaneous mixing models to extract a source from convolutive mixed sources. A new decorrelation procedure is proposed to help the algorithm separate the rest of the sources one by one. This scalable feature enables us to extract only some of the source signals from their convolutive mixtures. Also, the algorithm does not suffer from the problems of frequency domain based algorithms on arbitrary scaling and permutations in different frequency components. Simulations on synthetic data and real-world recordings were used to verify the extended fixed-point algorithm. Results of the simulations show that the algorithm is capable of significantly suppressing the crosstalk of the extracted source signals.
机译:提出了一种基于一般对比度函数准则的时域盲源分离算法。该算法扩展了用于瞬时混合模型的有效定点算法,以从卷积混合源中提取源。提出了一种新的去相关程序,以帮助该算法将其余的源一一分离。这种可扩展的功能使我们能够从其卷积混合物中仅提取一些源信号。而且,该算法不存在基于频域的算法在不同频率分量中的任意缩放和置换的问题。通过对合成数据和真实世界记录的仿真来验证扩展定点算法。仿真结果表明,该算法能够显着抑制提取的源信号的串扰。

著录项

  • 作者

    Leung CT; Siu WC;

  • 作者单位
  • 年度 2007
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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