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المؤلفAlmaadeed, Noor
المؤلفAggoun, Amar
المؤلفAmira, Abbes
تاريخ الإتاحة2024-08-11T05:39:17Z
تاريخ النشر2015
اسم المنشورIET Biometrics
المصدرScopus
الرقم المعياري الدولي للكتاب20474938
معرّف المصادر الموحدhttp://dx.doi.org/10.1049/iet-bmt.2014.0011
معرّف المصادر الموحدhttp://hdl.handle.net/10576/57540
الملخصThe rapid momentum of the technology progress in the recent years has led to a tremendous rise in the use of biometric authentication systems. The objective of this research is to investigate the problem of identifying a speaker from its voice regardless of the content. In this study, the authors designed and implemented a novel text-independent multimodal speaker identification system based on wavelet analysis and neural networks. Wavelet analysis comprises discrete wavelet transform, wavelet packet transform, wavelet sub-band coding and Mel-frequency cepstral coefficients (MFCCs). The learning module comprises general regressive, probabilistic and radial basis function neural networks, forming decisions through a majority voting scheme. The system was found to be competitive and it improved the identification rate by 15% as compared with the classical MFCC. In addition, it reduced the identification time by 40% as compared with the back-propagation neural network, Gaussian mixture model and principal component analysis. Performance tests conducted using the GRID database corpora have shown that this approach has faster identification time and greater accuracy compared with traditional approaches, and it is applicable to real-time, text-independent speaker identification systems.
اللغةen
الناشرInstitution of Engineering and Technology
الموضوعSpeaker identification
Multimodal neural networks
Wavelet analysis
Biometric authentication
Speech recognition
text-independent
neural networks
MFCC (Mel-frequency cepstral coefficients)
العنوانSpeaker identification using multimodal neural networks and wavelet analysis
النوعArticle
الصفحات18-28
رقم العدد1
رقم المجلد4
dc.accessType Open Access


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