TY - JOUR
T1 - Analysis and comparison of multichannel noise reduction methods in a common framework
AU - Huang, Yiteng Arden
AU - Benesty, Jacob
AU - Chen, Jingdong
PY - 2008
Y1 - 2008
N2 - Abstract-Noise reduction for speech enhancement is a useful technique, but in general it is a challenging problem. While a single-channel algorithm is easy to use in practice, it inevitably introduces speech distortion to the desired speech signal while reducing noise. Today, the explosive growth in computational power and the continuous drop in the cost and size of acoustic electric transducers are driving the interest of employing multiple microphones in speech processing systems. This opens new opportunities for noise reduction. In this paper, we present an analysis of three multichannel noise reduction algorithms, namely Wiener filter, subspace, and spatial-temporal prediction, in a common framework. We intend to investigate whether it is possible for the multichannel noise reduction algorithms to reduce noise without speech distortion. Finally, we justify what we learn via theoretical analyses by simulations using real impulse responses measured in the varechoic chamber at Bell Labs.
AB - Abstract-Noise reduction for speech enhancement is a useful technique, but in general it is a challenging problem. While a single-channel algorithm is easy to use in practice, it inevitably introduces speech distortion to the desired speech signal while reducing noise. Today, the explosive growth in computational power and the continuous drop in the cost and size of acoustic electric transducers are driving the interest of employing multiple microphones in speech processing systems. This opens new opportunities for noise reduction. In this paper, we present an analysis of three multichannel noise reduction algorithms, namely Wiener filter, subspace, and spatial-temporal prediction, in a common framework. We intend to investigate whether it is possible for the multichannel noise reduction algorithms to reduce noise without speech distortion. Finally, we justify what we learn via theoretical analyses by simulations using real impulse responses measured in the varechoic chamber at Bell Labs.
KW - Microphone array signal processing
KW - Multi-channel subspace method
KW - Multichannel Wiener filter
KW - Noise reduction
KW - Spatial prediction
KW - Speech enhancement
UR - http://www.scopus.com/inward/record.url?scp=65249159268&partnerID=8YFLogxK
U2 - 10.1109/TASL.2008.921754
DO - 10.1109/TASL.2008.921754
M3 - 文章
AN - SCOPUS:65249159268
SN - 1558-7916
VL - 16
SP - 957
EP - 968
JO - IEEE Transactions on Audio, Speech and Language Processing
JF - IEEE Transactions on Audio, Speech and Language Processing
IS - 5
ER -