DocumentCode :
1908978
Title :
Application of Tucker Decomposition in Speech Signal Feature Extraction
Author :
Lidong Yang ; Jing Wang ; Xiang Xie ; Jingming Kuang
Author_Institution :
Beijing Inst. of Technol., Beijing, China
fYear :
2013
fDate :
17-19 Aug. 2013
Firstpage :
155
Lastpage :
158
Abstract :
Speech signal feature extraction is an important part of speech recognition system. We present Tucker decomposition to extract speech feature. Firstly, the preprocessed speech signal is decomposed via three-level Wavelet transform, and the information in different scales is obtained. Next, the conventional feature parameters are extracted from the different scales, and a 3-order speech tensor (frames, scales, feature parameters) could be created. Then, the tensor is decomposed by Tucker decomposition, and projection matrices in different mode are obtained. Thirdly, matrix product is performed between speech tensor and projection matrices in each mode, and mapped results are metricized. Finally, feature system in high order space is built, in other words, speech feature matrices are obtained. The feature system can fully express speech signal features. These matrices can be used for model training and speech recognition. Numerical experiments support the advantage of Tucker decomposition over conventional methods for speech signal feature extraction, furthermore, it is robust to noisy speech.
Keywords :
feature extraction; matrix algebra; speech recognition; tensors; wavelet transforms; 3-order speech tensor; Tucker decomposition; high order feature space; matrix product; noisy speech; projection matrices; speech recognition system; speech signal decomposition; speech signal feature extraction; three-level wavelet transform; Feature extraction; Matrix decomposition; Mel frequency cepstral coefficient; Robustness; Speech; Speech recognition; Tensile stress; Tucker decomposition; feature extraction; tensor; wavelet transform;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Asian Language Processing (IALP), 2013 International Conference on
Conference_Location :
Urumqi
Type :
conf
DOI :
10.1109/IALP.2013.50
Filename :
6646026
Link To Document :
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