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Classification of Respiratory Sounds using Wavelet Transform and Neural network

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dc.contributor.author El-tohami, Islam Khalid
dc.contributor.author Supervisor,- Zeinab Adam Mustafa
dc.date.accessioned 2016-12-08T06:40:56Z
dc.date.available 2016-12-08T06:40:56Z
dc.date.issued 2016-10-10
dc.identifier.citation El-tohami, Islam Khalid . Classification of Respiratory Sounds using Wavelet Transform and Neural network / Islam Khalid El-tohami ; Zeinab Adam Mustafa .- Khartoum: Sudan University of Science and Technology, college of Engineering, 2016 .-51p. :ill. ;28cm .-M.Sc. en_US
dc.identifier.uri http://repository.sustech.edu/handle/123456789/14849
dc.description Thesis en_US
dc.description.abstract Respiratory sound contains information of lung condition which helps in the diagnosis of lung diseases. Stethoscope is the traditional method used to obtain this information but it depends on the physician experience and hearing. To avoid this limitation and to make optimum benefit of the respiratory sound information a computer aided diagnosis system was built. The respiratory sound signals were divided into segments each contains one inspiratory and expiratory cycle, wavelet transform (WT) was used for analysis, features were obtained from its coefficients and finally classifying using artificial neural network (ANN) to normal sound and abnormal sound and classifying the abnormal sound to crackle and wheeze. The accuracy of classification between normal and abnormal was 95.7% and for classification between crackle and wheeze was 98.1%. en_US
dc.description.sponsorship Sudan University of Science and Technology en_US
dc.language.iso en en_US
dc.publisher Sudan University of Science and Technology en_US
dc.subject Biomedical Engineering en_US
dc.subject Transform and Neural network en_US
dc.subject Respiratory Sounds en_US
dc.title Classification of Respiratory Sounds using Wavelet Transform and Neural network en_US
dc.title.alternative تصنیف أصوات الجھاز التنفسي بإستخدام المویجات و الشبكة العصبیة. en_US
dc.type Thesis en_US


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