Speech Enhancement based on Noise Eigenspace Projection
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概要
- 論文の詳細を見る
How to reduce noise with less speech distortion is a challenging issue for speech enhancement. We propose a novel approach for reducing noise with the cost of less speech distortion. A noise signal can generally be considered to consist of two components, a "white-like" component with a uniform energy distribution and a "color" component with a concentrated energy distribution in some frequency bands. An approach based on noise eigenspace projections is proposed to pack the color component into a subspace, named "noise subspace". This subspace is then removed from the eigenspace to reduce the color component. For the white-like component, a conventional enhancement algorithm is adopted as a complementary processor. We tested our algorithm on a speech enhancement task using speech data from the Texas Instruments and Massachusetts Institute of Technology (TIMIT) dataset and noise data from NOISEX-92. The experimental results show that the proposed algorithm efficiently reduces noise with little speech distortion. Objective and subjective evaluations confirmed that the proposed algorithm outperformed conventional enhancement algorithms.
- 電子情報通信学会の論文
- 2009-05-01
著者
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Lu Xugang
Atr Spoken Language Communication Research Laboratories
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Lu Xugang
School Of Information Science Japan Advanced Institute Of Science And Technology
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Dang Jianwu
Japan Advanced Inst. Of Sci. And Technol. Ishikawa Jpn
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Ying Dongwen
School Of Information Science Japan Advanced Institute Of Science And Technology
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Lu Xugang
Information School Japan Advanced Institute Of Science And Technology
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Ying Dongwen
Information School Japan Advanced Institute Of Science And Technology
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Unoki Masashi
Information School Japan Advanced Institute Of Science And Technology
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DANG Jianwu
Information School, Japan Advanced Institute of Science and Technology
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Dang Jianwu
Information School Japan Advanced Institute Of Science And Technology
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Unoki Masashi
Japan Advanced Inst. Sci. And Technol. Ishikawa Jpn
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