Please use this identifier to cite or link to this item: https://repository.sustech.edu/handle/123456789/19554
Title: Classification of Heart Sounds using Random Forests
Authors: DafaAlla, Ebtihal El-Saudi
Mohamed, Eissar Saifeldin
Babiker, RawanAzhari
AbdElwahed, Romisa Gafar
Supervisor-, Eltahir Mohamed Hussein
Keywords: Heart Sounds
Random Forests
Classification of Heart Sounds
Heart
Issue Date: 1-Oct-2017
Publisher: Sudan University of Science and Technology
Citation: DafaAlla, Ebtihal El-Saudi.Classification of Heart Sounds using Random Forests/Ebtihal El-Saudi DafaAlla...{etal};Eltahir Mohamed Hussein.-Khartoum: Sudan University of Science and Technology , College of Engineering , 2017.-76 p. :ill;28cm.- Bachelors search.
Abstract: Auscultation is a technique, in which Physicians used the stethoscope to listen to patient‟s heart sounds in order to make a diagnosis. However, the determination of heart conditions by heart auscultation is a difficult task and it requires special training of medical staff. On the other hand, in primary or home health care, when deciding who requires special care, auscultation plays a very important role; and for these situations, an „„intelligent stethoscope‟‟ with decision support abilities is highly needed and it would be a great added value. The system algorithm has been realized in offline data phase, 234 cases of Heart Sounds (HSs) files were collected from ”Physiobank”, and then the background noise is minimized using wavelet transform. After that statistics features vector elements are formed. Finally, classification process was accomplished using random forest algorithm. The implementation of the proposed algorithm produced accuracy of 98.28%, and sensitivity of 98.29%.
Description: Bachelors search
URI: http://repository.sustech.edu/handle/123456789/19554
Appears in Collections:Bachelor of Engineering

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