Abstract:
Body auscultation is an easy and non-invasive method for detection of diseases in human body. The conventional method is a bit time consuming and requires professionals f...Show MoreMetadata
Abstract:
Body auscultation is an easy and non-invasive method for detection of diseases in human body. The conventional method is a bit time consuming and requires professionals for diagnosis. Automatic diagnosis of diseases using heart sound can be of great help in the rural areas where professional help is not available. The proposed work presents an automatic and efficient method of diagnosis and classification using heart sound. Mel Frequency Cepstral Coefficient (MFCC) features are extracted from heart sounds for diagnosis. Supervised classification method is used to separate the normal and abnormal heart sound for detection of diseases. The proposed method was tested on a comprehensive database of heart sounds and achieved accuracy of 97.50% during classification process. The experiment results indicates that the proposed method is efficient for classification of healthy/unhealthy heart sounds and computationally cheap making it suitable for real time applications.
Date of Conference: 05-07 July 2017
Date Added to IEEE Xplore: 23 October 2017
ISBN Information:
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- IEEE Keywords
- Index Terms
- Normal Heart ,
- Computer-aided Diagnosis ,
- Heart Sound ,
- Abnormal Heart Sounds ,
- Heart Sound Classification ,
- Supervised Learning ,
- Disease Detection ,
- Diagnosis Method ,
- Auscultation ,
- Professional Help ,
- Supervised Classification Method ,
- Mel-frequency Cepstral Coefficients ,
- Training Set ,
- Computation Time ,
- Training Dataset ,
- Support Vector Machine ,
- Normal Samples ,
- Support Vector Machine Classifier ,
- Early Detection Of Disease ,
- Linear Kernel ,
- Audio Data ,
- Abnormal Samples ,
- Supervised Classification Technique ,
- Breath Sounds
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Normal Heart ,
- Computer-aided Diagnosis ,
- Heart Sound ,
- Abnormal Heart Sounds ,
- Heart Sound Classification ,
- Supervised Learning ,
- Disease Detection ,
- Diagnosis Method ,
- Auscultation ,
- Professional Help ,
- Supervised Classification Method ,
- Mel-frequency Cepstral Coefficients ,
- Training Set ,
- Computation Time ,
- Training Dataset ,
- Support Vector Machine ,
- Normal Samples ,
- Support Vector Machine Classifier ,
- Early Detection Of Disease ,
- Linear Kernel ,
- Audio Data ,
- Abnormal Samples ,
- Supervised Classification Technique ,
- Breath Sounds
- Author Keywords