DocumentCode :
3547586
Title :
Noisy speech recognition by hierarchical recurrent neural fuzzy networks
Author :
Juang, Chia-Feng ; Chiou, Chyi-Tian ; Huang, Hao-Jung
Author_Institution :
Dept. of Electr. Eng., Nat. Chung-Hsing Univ., Taichung, Taiwan
fYear :
2005
fDate :
23-26 May 2005
Firstpage :
5122
Abstract :
Noisy speech recognition by hierarchical recurrent neural fuzzy networks (HRNFN) is proposed. The proposed HRNFN is a hierarchical connection of two recurrent neural fuzzy networks, where one is used for noise filtering and the other for recognition. The recurrent neural fuzzy network used is the TSK-type recurrent fuzzy network (TRFN), which is constructed by recurrent fuzzy if-then rules. In n words recognition, n TRFNs are created for n words modeling. The total prediction error of each TRFN is used as recognition criterion. In filtering, n TRFNs are created, and each TRFN recognizer is connected with a corresponding TRFN filter, which filters noisy speech patterns in the feature domain before feeding them to the recognizer. Experiments on words recognition under different types of noise are performed to verify the performance of HRNFN.
Keywords :
acoustic noise; fuzzy neural nets; nonlinear filters; random noise; recurrent neural nets; speech recognition; hierarchical recurrent neural fuzzy networks; noise filtering; noisy speech pattern filtering; noisy speech recognition; nonlinear filter; prediction error; recognition criterion; recurrent fuzzy if-then rules; recurrent fuzzy network; word modeling; word recognition; Automatic speech recognition; Degradation; Filtering; Fuzzy neural networks; Nonlinear filters; Pattern recognition; Recurrent neural networks; Signal to noise ratio; Speech recognition; Working environment noise; Speech recognition; nonlinear filter; recurrent fuzzy network; recurrent neural network;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits and Systems, 2005. ISCAS 2005. IEEE International Symposium on
Print_ISBN :
0-7803-8834-8
Type :
conf
DOI :
10.1109/ISCAS.2005.1465787
Filename :
1465787
Link To Document :
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