DocumentCode :
1448133
Title :
A Linear Neural Network-Based Approach to Stereophonic Acoustic Echo Cancellation
Author :
Bekrani, Mehdi ; Khong, Andy W H ; Lotfizad, Mojtaba
Author_Institution :
Tarbiat Modares Univ., Tehran, Iran
Volume :
19
Issue :
6
fYear :
2011
Firstpage :
1743
Lastpage :
1753
Abstract :
We propose a new adaptive filtering algorithm for stereophonic acoustic echo cancellation. This algorithm uses a linear single-layer feedforward neural network to efficiently decorrelate the tap-input vectors. It achieves an improvement in the misalignment convergence by means of applying the resulted decorrelated tap-input vectors to the coefficient update of the adaptive filters. The advantage of our approach as compared with existing techniques is that our algorithm, in use with the nonlinear preprocessor, can achieve a high rate of misalignment convergence without significantly degrading the quality and stereophonic image of the transmitted signals since our neural network operates on the tap-input vectors as opposed to the transmitted audio signals. We then show that we can achieve an efficient implementation for the proposed decorrelation method by considering the structure of the joint-input covariance matrix of the stereophonic signals.
Keywords :
adaptive filters; echo; echo suppression; feedforward neural nets; stereo image processing; adaptive filtering algorithm; coefficient update; decorrelated tap-input vector; decorrelation method; joint-input covariance matrix; linear neural network; linear single-layer feedforward neural network; misalignment convergence; nonlinear preprocessor; stereophonic acoustic echo cancellation; stereophonic image; stereophonic signal; transmitted audio signal; transmitted signal; Artificial neural networks; Coherence; Convergence; Decorrelation; Echo cancellers; Vectors; Adaptive filter; correlation matrix; interchannel coherence; misalignment convergence; stereophonic acoustic echo cancellation (SAEC);
fLanguage :
English
Journal_Title :
Audio, Speech, and Language Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1558-7916
Type :
jour
DOI :
10.1109/TASL.2010.2098868
Filename :
5711647
Link To Document :
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