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ZCHSound: Open-Source ZJU Paediatric Heart Sound Database With Congenital Heart Disease
Insights
Researchers developed a large pediatric heart sound database for congenital heart disease (CHD) diagnosis. This resource aids doctors and improves intelligent auscultation algorithms, achieving 90.3% accuracy in classifying heart sounds.
Area of Science:
- Biomedical Engineering
- Cardiology
- Pediatrics
Background:
- Congenital heart disease (CHD) is a prevalent birth defect in children.
- Intelligent auscultation algorithms can reduce diagnostic subjectivity and physician workload.
- Current algorithm development is hindered by a lack of standardized, public pediatric heart sound databases.
Purpose of the Study:
- To develop a large-scale, high-standard, high-quality, and accurately labeled pediatric CHD heart sound database.
- To provide a valuable resource for clinical training and the advancement of intelligent auscultation algorithms.
Main Methods:
- Collected heart sound signals from 1259 participants across three children's hospitals between 2020 and 2022 using electronic stethoscopes.
- Ensured label accuracy through confirmation by two expert cardiac surgeons for all collected data.
- Extracted 84 features and employed machine learning models to establish a performance baseline for the ZCHsound database.
Main Results:
- The ZCHSound database was divided into high-quality (filtered) and low-quality (noisy) datasets.
- A random forest ensemble model achieved a 90.3% F1 score on the high-quality dataset for classifying normal versus pathological heart sounds.
Conclusions:
- Successfully established a large-scale, high-quality, standardized pediatric CHD sound database with precise diagnoses.
- The database serves as a crucial learning resource for clinical auscultation and data support for developing intelligent auscultation algorithms.
Abstract:
Congenital heart disease (CHD) is a common birth defect in children. Intelligent auscultation algorithms have been proven to reduce the subjectivity of diagnoses and alleviate the workload of doctors. However, the development of this algorithm has been limited by the lack of reliable, standardized, and publicly available pediatric heart sound databases. Therefore, the objective of this research is to develop a large-scale, high-standard, high-quality, and accurately labeled pediatric CHD heart sound database.
Method:
From 2020 to 2022, we collaborated with experienced cardiac surgeons from three general children's hospitals to collect heart sound signals from 1259 participants using electronic stethoscopes. To ensure the accuracy of the labels, the labels for all data were confirmed by two cardiac experts. To establish the baseline of ZCHsound, we extracted 84 features and used machine learning models to evaluate the performance of the classification task.
Results:
The ZCHSound database was divided into two datasets: one is a high-quality, filtered clean heart sound dataset, and the other is a low-quality, noisy heart sound dataset. In the evaluation of the high-quality dataset, our random forest ensemble model achieved an F1 score of 90.3% in the classification task of normal and pathological heart sounds.
Conclusion:
This study has successfully established a large-scale, high-quality, rigorously standardized pediatric CHD sound database with precise disease diagnosis. This database not only provides important learning resources for clinical doctors in auscultation knowledge but also offers valuable data support for algorithm engineers in developing intelligent auscultation algorithms.
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