Effective features extraction by analyzing heart sound for identifying cardiovascular diseases related to COVID-19: A

Zahra Sabouri1, Abbas Ghadimi2, Azadeh Kiani-Sarkaleh3

  • 1Department of Electrical Engineering, College of Technical and Engineering, West Tehran Branch, Islamic Azad University, Tehran, Iran.

Insights

This study introduces an automatic, non-invasive method for diagnosing cardiovascular diseases exacerbated by COVID-19 using heart sound analysis. The proposed system achieves high accuracy, offering a practical tool for early detection during the pandemic.

Area of Science:

  • Cardiology
  • Medical Signal Processing
  • Artificial Intelligence in Healthcare

Background:

  • Cardiovascular diseases (CVDs) pose increased mortality risks when co-occurring with coronavirus infections, particularly during the COVID-19 pandemic.
  • Early and accurate diagnosis of COVID-19-related cardiac complications is critical for patient outcomes.
  • Current diagnostic methods may be invasive, costly, or time-consuming, necessitating alternative approaches.

Purpose of the Study:

  • To develop an automatic, non-invasive, and inexpensive method for diagnosing cardiovascular diseases in the context of COVID-19.
  • To leverage heart sound processing and feature extraction for improved diagnostic capabilities.
  • To establish a generalizable and practical model for identifying cardiac conditions during the COVID-19 pandemic.

Main Methods:

  • Extraction and selection of morphological and statistical features from heart sound signals across various frequencies.
  • Application of diverse classifiers with different kernels for diagnostic analysis under balanced and unbalanced data conditions.
  • Elimination of dependence on specific segmentation and filtering techniques to enhance generalizability.

Main Results:

  • Achieved 93.15% accuracy and 93.72% F1-score using 60 effective features in balanced data conditions.
  • Demonstrated the system's ability to achieve desired results on a generalized dataset using features extracted from the Azad dataset.
  • Validated the effectiveness and generalizability of the proposed method for diagnosing cardiovascular diseases in COVID-19 patients.

Conclusions:

  • The proposed heart sound processing approach provides an effective and generalizable method for diagnosing cardiovascular diseases in COVID-19 patients.
  • The system offers a practical and rapid diagnostic tool, crucial for managing cardiac complications during the pandemic.
  • This non-invasive technique holds significant potential for early detection and improved patient management in resource-limited settings.

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