Early Diagnosis and Classification of Fetal Health Status from a Fetal Cardiotocography Dataset Using Ensemble Learning.

FHR NST ensemble learning fetal health

Journal

Diagnostics (Basel, Switzerland)
ISSN: 2075-4418
Titre abrégé: Diagnostics (Basel)
Pays: Switzerland
ID NLM: 101658402

Informations de publication

Date de publication:
25 Jul 2023
Historique:
received: 09 07 2023
revised: 21 07 2023
accepted: 22 07 2023
medline: 12 8 2023
pubmed: 12 8 2023
entrez: 12 8 2023
Statut: epublish

Résumé

(1) Background: According to the World Health Organization (WHO), 6.3 million intrauterine fetal deaths occur every year. The most common method of diagnosing perinatal death and taking early precautions for maternal and fetal health is a nonstress test (NST). Data on the fetal heart rate and uterus contractions from an NST device are interpreted based on a trace printer's output, allowing for a diagnosis of fetal health to be made by an expert. (2) Methods: in this study, a predictive method based on ensemble learning is proposed for the classification of fetal health (normal, suspicious, pathology) using a cardiotocography dataset of fetal movements and fetal heart rate acceleration from NST tests. (3) Results: the proposed predictor achieved an accuracy level above 99.5% on the test dataset. (4) Conclusions: from the experimental results, it was observed that a fetal health diagnosis can be made during NST using machine learning.

Identifiants

pubmed: 37568833
pii: diagnostics13152471
doi: 10.3390/diagnostics13152471
pmc: PMC10417593
pii:
doi:

Types de publication

Journal Article

Langues

eng

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Auteurs

Adem Kuzu (A)

Department of Software Engineering, Firat University, Elazig 23119, Turkey.

Yunus Santur (Y)

Department of Artificial Intelligence and Data Engineering, Firat University, Elazig 23119, Turkey.

Classifications MeSH