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respiratory-sounds

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RespireNet is an innovative web-based application that harnesses the capabilities of deep learning and Mel-frequency cepstral coefficients (MFCC) as a feature extraction technique for accurate respiratory disease prediction. The primary objective of this user-friendly web application is to facilitate early detection.

  • Updated Aug 2, 2023
  • Python

ARI2201 - IAPT · Comparative analysis of machine learning and deep learning models for automated classification of lung respiratory sounds using audio feature extraction to support pulmonary disease detection.

  • Updated Sep 5, 2024
  • Jupyter Notebook

Automated respiratory sound classification using ML and deep learning on the ICBHI 2017 dataset. Patient-aware evaluation with SVM, CNN, CRNN, and ResNet18 across cycle-level (4-class + binary) and patient-level disease diagnosis.

  • Updated Apr 9, 2026
  • Jupyter Notebook

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