Current applications of big data and machine learning in cardiology.

Cardiac imaging techniques Cardiology Electrocardiography Machine learning Review

Journal

Journal of geriatric cardiology : JGC
ISSN: 1671-5411
Titre abrégé: J Geriatr Cardiol
Pays: China
ID NLM: 101237881

Informations de publication

Date de publication:
Aug 2019
Historique:
entrez: 27 9 2019
pubmed: 27 9 2019
medline: 27 9 2019
Statut: ppublish

Résumé

Machine learning (ML) is a software solution with the ability of making predictions without prior explicit programming, aiding in the analysis of large amounts of data. These algorithms can be trained through supervised or unsupervised learning. Cardiology is one of the fields of medicine with the highest interest in its applications. They can facilitate every step of patient care, reducing the margin of error and contributing to precision medicine. In particular, ML has been proposed for cardiac imaging applications such as automated computation of scores, differentiation of prognostic phenotypes, quantification of heart function and segmentation of the heart. These tools have also demonstrated the capability of performing early and accurate detection of anomalies in electrocardiographic exams. ML algorithms can also contribute to cardiovascular risk assessment in different settings and perform predictions of cardiovascular events. Another interesting research avenue in this field is represented by genomic assessment of cardiovascular diseases. Therefore, ML could aid in making earlier diagnosis of disease, develop patient-tailored therapies and identify predictive characteristics in different pathologic conditions, leading to precision cardiology.

Identifiants

pubmed: 31555327
doi: 10.11909/j.issn.1671-5411.2019.08.002
pii: jgc-16-08-601
pmc: PMC6748901
doi:

Types de publication

Journal Article Review

Langues

eng

Pagination

601-607

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Auteurs

Renato Cuocolo (R)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", Naples, Italy.

Teresa Perillo (T)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", Naples, Italy.

Eliana De Rosa (E)

Department of Translational Medical Sciences, University of Naples "Federico II", Naples, Italy.

Lorenzo Ugga (L)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", Naples, Italy.

Mario Petretta (M)

Department of Translational Medical Sciences, University of Naples "Federico II", Naples, Italy.

Classifications MeSH