A Machine Learning Approach for Chronic Heart Failure Diagnosis.
heart failure
machine learning
Journal
Diagnostics (Basel, Switzerland)
ISSN: 2075-4418
Titre abrégé: Diagnostics (Basel)
Pays: Switzerland
ID NLM: 101658402
Informations de publication
Date de publication:
10 Oct 2021
10 Oct 2021
Historique:
received:
25
08
2021
revised:
06
10
2021
accepted:
07
10
2021
entrez:
23
10
2021
pubmed:
24
10
2021
medline:
24
10
2021
Statut:
epublish
Résumé
The aim of this study was to address chronic heart failure (HF) diagnosis with the application of machine learning (ML) approaches. In the present study, we simulated the procedure that is followed in clinical practice, as the models we built are based on various combinations of feature categories, e.g., clinical features, echocardiogram, and laboratory findings. We also investigated the incremental value of each feature type. The total number of subjects utilized was 422. An ML approach is proposed, comprising of feature selection, handling class imbalance, and classification steps. The results for HF diagnosis were quite satisfactory with a high accuracy (91.23%), sensitivity (93.83%), and specificity (89.62%) when features from all categories were utilized. The results remained quite high, even in cases where single feature types were employed.
Identifiants
pubmed: 34679561
pii: diagnostics11101863
doi: 10.3390/diagnostics11101863
pmc: PMC8534549
pii:
doi:
Types de publication
Journal Article
Langues
eng
Subventions
Organisme : H2020-NMBP-2016-2017 CALL FOR NANOTECHNOLOGIES, ADVANCED MATERIALS, BIOTECHNOLOGY AND PRODUCTION
ID : 768686
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