DocumentCode :
1706702
Title :
Bidirectional neural network for pathological voice detection
Author :
Esmaili, Iman ; Jafarnia Dabanloo, Nader ; Maghooli, Keyvan
Author_Institution :
Biomed. Eng. Dept., Islamic Azad Univ., Tehran, Iran
fYear :
2013
Firstpage :
239
Lastpage :
242
Abstract :
We showed in our recent work that Bidirectional neural network (BNN) is a powerful tool for feature compensation in automatic speech recognition systems. In this paper, we have introduced BNN as feature compensator for better discriminating of pathological voices from normal subjects. Mel-Frequency Cepstral Coefficients (MFCCs) were extracted from each frame of sample voices and were compensated in two steps. First, BNN is trained with both normal and pathological feature vectors. Our hypothesis is that BNN can extract useful knowledge about the patterns of each class during training step. In second step, MFCC feature vectors feed into BNN and compensate according to latent knowledge of BNN. In the last step, Compensated MFCCs are classified as pathological or normal by HMMs. We achieved 4.67%, 2.81% and 2.24% improvement in measures of specificity, accuracy and sensitivity by compensated feature vectors compared to the original feature vectors. Results corroborated our hypothesis about the ability of BNN in compensation of feature vectors in a way that these features become more suitable for detection of pathological voices from normal ones.
Keywords :
cepstral analysis; knowledge acquisition; medical signal detection; medical signal processing; neural nets; speech recognition; BNN; MFCC; Mel-frequency cepstral coefficients; accuracy; automatic speech recognition systems; bidirectional neural network; feature compensation; knowledge extraction; pathological voice detection; sensitivity; specificity; Feature extraction; Hidden Markov models; Mel frequency cepstral coefficient; Neural networks; Pathology; Support vector machine classification; Vectors; Bidirectional Neural Network; Feature Compensation; Pathological Voice Detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Engineering (ICBME), 2013 20th Iranian Conference on
Conference_Location :
Tehran
Type :
conf
DOI :
10.1109/ICBME.2013.6782226
Filename :
6782226
Link To Document :
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