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Bidirectional Neural Network for Pathological Voice Detection

Publish Year: 1392
Type: Conference paper
Language: English
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ICBME20_095

Index date: 14 April 2015

Bidirectional Neural Network for Pathological Voice Detection 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 thispaper, we have introduced BNN as feature compensator for better discriminating of pathological voices from normal subjects. Mel-Frequency Cepstral Coefficients (MFCCs) wereextracted from each frame of sample voices and were compensated in two steps. First, BNN is trained with both normaland pathological feature vectors. Our hypothesis is that BNN can extract useful knowledge about the patterns of each class duringtraining 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 sensitivityby compensated feature vectors compared to the original feature vectors. Results corroborated our hypothesis about the ability ofBNN in compensation of feature vectors in a way that these features become more suitable for detection of pathological voices from normal ones.

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Bidirectional Neural Network for Pathological Voice Detection authors

Iman Esmaili

Biomedical Engineering Department Science & Research Branch, Islamic Azad University Tehran, Iran

Nader Jafarnia Dabanloo

Biomedical Engineering Department Science & Research Branch, Islamic Azad University Tehran, Iran

keyvan Maghooli

Biomedical Engineering Department Science & Research Branch, Islamic Azad University Tehran, Iran