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Author:

He, Qi (He, Qi.) | Bao, Chang-chun (Bao, Chang-chun.) (Scholars:鲍长春) | Bao, Feng (Bao, Feng.)

Indexed by:

CPCI-S Scopus

Abstract:

This paper presents a codebook-based speech enhancement algorithm by using Markov process and speech-presence probability (SPP). The Markov process is utilized to model the correlation between the adjacent code-vectors in the codebook for optimizing Bayesian minimum mean squared error (MMSE) estimator. Then the proposed estimator is used to estimate spectral shapes and gains of speech and noise. The correlation between adjacent linear prediction (LP) gains is also fully considered during the procedure of parameter estimation. Through the introduction of SPP in the codebookconstrained Wiener filter, the proposed Wiener filter achieves the goal of much more noise reduction and does not result in the speech component distortion. The evaluation results confirm that the proposed algorithm has a much better performance for reducing annoying background noise than the conventional codebook-based algorithms.

Keyword:

Markov process Codebook Wiener filter Speech enhancement

Author Community:

  • [ 1 ] [He, Qi]Beijing Univ Technol, Speech & Audio Signal Proc Lab, Sch Elect Informat & Control Engn, Beijing 100124, Peoples R China
  • [ 2 ] [Bao, Chang-chun]Beijing Univ Technol, Speech & Audio Signal Proc Lab, Sch Elect Informat & Control Engn, Beijing 100124, Peoples R China
  • [ 3 ] [Bao, Feng]Beijing Univ Technol, Speech & Audio Signal Proc Lab, Sch Elect Informat & Control Engn, Beijing 100124, Peoples R China

Reprint Author's Address:

  • [He, Qi]Beijing Univ Technol, Speech & Audio Signal Proc Lab, Sch Elect Informat & Control Engn, Beijing 100124, Peoples R China

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Source :

16TH ANNUAL CONFERENCE OF THE INTERNATIONAL SPEECH COMMUNICATION ASSOCIATION (INTERSPEECH 2015), VOLS 1-5

Year: 2015

Page: 1780-1784

Language: English

Cited Count:

WoS CC Cited Count: 3

SCOPUS Cited Count:

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 4

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