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Revolutionizing Cardiology through Artificial Intelligence-Big Data from Proactive Prevention to Precise Diagnostics and Cutting-Edge Treatment-A Comprehensive Review of the Past 5 Years.
Stamate, Elena; Piraianu, Alin-Ionut; Ciobotaru, Oana Roxana; Crassas, Rodica; Duca, Oana; Fulga, Ana; Grigore, Ionica; Vintila, Vlad; Fulga, Iuliu; Ciobotaru, Octavian Catalin.
Afiliação
  • Stamate E; Department of Cardiology, Emergency University Hospital of Bucharest, 050098 Bucharest, Romania.
  • Piraianu AI; Faculty of Medicine and Pharmacy, University "Dunarea de Jos" of Galati, 35 AI Cuza Street, 800010 Galati, Romania.
  • Ciobotaru OR; Faculty of Medicine and Pharmacy, University "Dunarea de Jos" of Galati, 35 AI Cuza Street, 800010 Galati, Romania.
  • Crassas R; Faculty of Medicine and Pharmacy, University "Dunarea de Jos" of Galati, 35 AI Cuza Street, 800010 Galati, Romania.
  • Duca O; Railway Hospital Galati, 800223 Galati, Romania.
  • Fulga A; Emergency County Hospital Braila, 810325 Braila, Romania.
  • Grigore I; Faculty of Medicine and Pharmacy, University "Dunarea de Jos" of Galati, 35 AI Cuza Street, 800010 Galati, Romania.
  • Vintila V; Emergency County Hospital Braila, 810325 Braila, Romania.
  • Fulga I; Faculty of Medicine and Pharmacy, University "Dunarea de Jos" of Galati, 35 AI Cuza Street, 800010 Galati, Romania.
  • Ciobotaru OC; Saint Apostle Andrew Emergency County Clinical Hospital, 177 Brailei Street, 800578 Galati, Romania.
Diagnostics (Basel) ; 14(11)2024 May 26.
Article em En | MEDLINE | ID: mdl-38893630
ABSTRACT

BACKGROUND:

Artificial intelligence (AI) can radically change almost every aspect of the human experience. In the medical field, there are numerous applications of AI and subsequently, in a relatively short time, significant progress has been made. Cardiology is not immune to this trend, this fact being supported by the exponential increase in the number of publications in which the algorithms play an important role in data analysis, pattern discovery, identification of anomalies, and therapeutic decision making. Furthermore, with technological development, there have appeared new models of machine learning (ML) and deep learning (DP) that are capable of exploring various applications of AI in cardiology, including areas such as prevention, cardiovascular imaging, electrophysiology, interventional cardiology, and many others. In this sense, the present article aims to provide a general vision of the current state of AI use in cardiology.

RESULTS:

We identified and included a subset of 200 papers directly relevant to the current research covering a wide range of applications. Thus, this paper presents AI applications in cardiovascular imaging, arithmology, clinical or emergency cardiology, cardiovascular prevention, and interventional procedures in a summarized manner. Recent studies from the highly scientific literature demonstrate the feasibility and advantages of using AI in different branches of cardiology.

CONCLUSIONS:

The integration of AI in cardiology offers promising perspectives for increasing accuracy by decreasing the error rate and increasing efficiency in cardiovascular practice. From predicting the risk of sudden death or the ability to respond to cardiac resynchronization therapy to the diagnosis of pulmonary embolism or the early detection of valvular diseases, AI algorithms have shown their potential to mitigate human error and provide feasible solutions. At the same time, limits imposed by the small samples studied are highlighted alongside the challenges presented by ethical implementation; these relate to legal implications regarding responsibility and decision making processes, ensuring patient confidentiality and data security. All these constitute future research directions that will allow the integration of AI in the progress of cardiology.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article