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Co-channel speech separation based on adaptive decorrelation filtering.

机译:基于自适应去相关滤波的同信道语音分离。

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摘要

The problem of co-channel speech separation based on adaptive decorrelation filtering (ADF) is studied. The ADF algorithm proposed by Weinstein et al. is carefully examined as the foundation of this work. The algorithm is formulated for the separation of two co-channel speech signals acquired by two microphones. By modeling the underlying acoustic paths using linear FIR filters and adaptively estimating these filter coefficients from the acquired signals based on decorrelation, the speech signals generated by different sources can be separated through a filtering process using the estimated filters. For practical application of this algorithm, improvements are proposed to address the issues of computational complexity, system stability, and convergence performance. The limitation of the algorithm is also discussed to identify suitable application scenarios.; The two-source ADF algorithm is generalized for the separation of M > 2 speech sources to extend the scope of application. A modification on the generalized algorithm is also proposed for scenarios where some speech sources are not of interest. By not extracting these undesired speech sources, this modification results in lower computational complexity, improved dynamic tracking ability, and better steady-state separation performance. An analysis on robustness shows that the ADF algorithm is sensitive to the existence of background noise, especially when the noise components in the acquired signals are highly correlated. It is also shown that by integrating a speech enhancement front-end based on the energy-constrained signal subspace method, the robustness of the ADF algorithm against non-speech-like background noise can be significantly improved.; Finally, to further improve the separation performance achieved by the previous direct-form ADF as well as to facilitate modular and easy implementation of ADF in hardware, a lattice-ladder structure for ADF is developed based on the joint forward and backward linear predictions. Experimental results demonstrate the effectiveness of the lattice-ladder algorithm in reducing cross-interference between co-channel speech sources. The results also show that the lattice-ladder algorithm achieved significant performance improvement over the direct-form algorithm. A simplified lattice-ladder ADF is proposed as a compromise between computational cost and system performance.
机译:研究了基于自适应去相关滤波(ADF)的同信道语音分离问题。 Weinstein等人提出的ADF算法。仔细检查作为这项工作的基础。制定了该算法,用于分离由两个麦克风获取的两个同频道语音信号。通过使用线性FIR滤波器对基础声路径进行建模,并基于去相关性从获取的信号中自适应地估计这些滤波器系数,可以通过使用估计滤波器的滤波过程来分离由不同源生成的语音信号。对于该算法的实际应用,提出了改进措施以解决计算复杂性,系统稳定性和收敛性能的问题。还讨论了算法的局限性,以识别合适的应用场景。通用的两源ADF算法用于分离 M

著录项

  • 作者

    Yen, Kuan-Chieh.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 142 p.
  • 总页数 142
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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