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Speech Denoising via Low-Rank and Sparse Matrix Decomposition

机译:通过低秩和稀疏矩阵分解实现语音降噪

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摘要

In this letter, we propose an unsupervised framework for speech noise reduction based on the recent development of low-rank and sparse matrix decomposition. The proposed framework directly separates the speech signal from noisy speech by decomposing the noisy speech spectrogram into three submatrices: the noise structure matrix, the clean speech structure matrix, and the residual noise matrix. Evaluations on the Noisex-92 dataset show that the proposed method achieves a signal-to-distortion ratio approximately 2.48 dB and 3.23 dB higher than that of the robust principal component analysis method and the non-negative matrix factorization method, respectively, when the input SNR is -5 dB.
机译:在这封信中,我们根据低秩和稀疏矩阵分解的最新发展提出了一种无监督的语音降噪框架。所提出的框架通过将噪声语音频谱图分解为三个子矩阵来直接将语音信号与噪声语音分离:噪声结构矩阵,纯净语音结构矩阵和残留噪声矩阵。对Noisex-92数据集的评估表明,当输入时,所提出的方法分别比稳健的主成分分析方法和非负矩阵分解方法的信噪比高约2.48 dB和3.23 dB。 SNR为-5 dB。

著录项

  • 来源
    《ETRI journal》 |2014年第1期|167-170|共4页
  • 作者单位

    Institute of Command Automation, People's Liberation Army University of Science and Technology, Nanjing, China;

    Institute of Command Automation, People's Liberation Army University of Science and Technology, Nanjing, China;

    Institute of Command Automation, People's Liberation Army University of Science and Technology, Nanjing, China;

    Institute of Command Automation, People's Liberation Army University of Science and Technology, Nanjing, China;

    Institute of Command Automation, People's Liberation Army University of Science and Technology, Nanjing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Low-rank and sparse matrix decomposition; noise reduction; robust principal component analysis;

    机译:低秩和稀疏矩阵分解;降低噪音;稳健的主成分分析;

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