Özet
Auscultation and analysing of lung sound is widely used in clinical area for diagnosis of lung diseases. Due to the non-stationary nature of lung sounds conventional frequency analysis technique is not a successful method for respiratory sound analysis. In this paper, classification of normal and abnormal lung sound using wavelet coefficient intended. Respiratory sounds are decomposed into the frequency subbands using wavelet transform and a set of statistical features are inspected from the sub-bands. Then, lung sounds classified as normal and abnormal using these statistical features. Artificial neural network and support vector machine are used for classification process.
| Tercüme edilen katkı başlığı | Classification of normal and abnormal lung sounds using wavelet coefficients |
|---|---|
| Orijinal dil | Türkçe |
| Ana bilgisayar yayını başlığı | 2014 22nd Signal Processing and Communications Applications Conference, SIU 2014 - Proceedings |
| Yayınlayan | IEEE Computer Society |
| Sayfalar | 2138-2141 |
| Sayfa sayısı | 4 |
| ISBN (Basılı) | 9781479948741 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - 2014 |
| Harici olarak yayınlandı | Evet |
| Etkinlik | 2014 22nd Signal Processing and Communications Applications Conference, SIU 2014 - Trabzon, Türkiye Süre: 23 Nis 2014 → 25 Nis 2014 |
Yayın serisi
| Adı | 2014 22nd Signal Processing and Communications Applications Conference, SIU 2014 - Proceedings |
|---|
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| ???event.eventtypes.event.conference??? | 2014 22nd Signal Processing and Communications Applications Conference, SIU 2014 |
|---|---|
| Ülke/Bölge | Türkiye |
| Şehir | Trabzon |
| Periyot | 23/04/14 → 25/04/14 |
BM SKH
Bu sonuç, aşağıdaki Sürdürülebilir Kalkınma Hedefine/Hedeflerine katkıda bulunur
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SKH 3 Sağlık ve Kaliteli Yaşam
Keywords
- artificial neural network
- respiratory sounds
- support vector machine
- wavelet coefficient
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