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Naslov:Using generative artificial intelligence in bibliometric analysis : 10 years of research trends from the European Resuscitation congresses
Avtorji:ID Fijačko, Nino (Avtor)
ID Masterson Creber, Ruth (Avtor)
ID Abella, Benjamin S. (Avtor)
ID Kocbek, Primož (Avtor)
ID Metličar, Špela (Avtor)
ID Greif, Robert (Avtor)
ID Štiglic, Gregor (Avtor)
Datoteke:.pdf 3._Elsevier_clanek.pdf (964,04 KB)
MD5: 7E5167370BB5F757856F299408F825AA
 
URL https://www.sciencedirect.com/science/article/pii/S2666520424000353?via%3Dihub
 
Jezik:Angleški jezik
Vrsta gradiva:Znanstveno delo
Tipologija:1.03 - Drugi znanstveni članki
Organizacija:FZV - Fakulteta za zdravstvene vede
FERI - Fakulteta za elektrotehniko, računalništvo in informatiko
Opis:Aims: The aim of this study is to use generative artificial intelligence to perform bibliometric analysis on abstracts published at European Resuscitation Council (ERC) annual scientific congress and define trends in ERC guidelines topics over the last decade. Methods: In this bibliometric analysis, the WebHarvy software (SysNucleus, India) was used to download data from the Resuscitation journal’s website through the technique of web scraping. Next, the Chat Generative Pre-trained Transformer 4 (ChatGPT-4) application programming interface (Open AI, USA) was used to implement the multinomial classification of abstract titles following the ERC 2021 guidelines topics. Results: From 2012 to 2022 a total of 2491 abstracts have been published at ERC congresses. Published abstracts ranged from 88 (in 2020) to 368 (in 2015). On average, the most common ERC guidelines topics were Adult basic life support (50.1%), followed by Adult advanced life support (41.5%), while Newborn resuscitation and support of transition of infants at birth (2.1%) was the least common topic. The findings also highlight that the Basic Life Support and Adult Advanced Life Support ERC guidelines topics have the strongest co-occurrence to all ERC guidelines topics, where the Newborn resuscitation and support of transition of infants at birth (2.1%; 52/2491) ERC guidelines topic has the weakest co-occurrence. Conclusion: This study demonstrates the capabilities of generative artificial intelligence in the bibliometric analysis of abstract titles using the example of resuscitation medicine research over the last decade at ERC conferences using large language models.
Ključne besede:generative artificial intelligence, bibliometric analysis, congress, emergency medicine, European Resuscitation Council
Status publikacije:Objavljeno
Verzija publikacije:Objavljena publikacija
Poslano v recenzijo:03.02.2024
Datum sprejetja članka:08.02.2024
Datum objave:23.02.2024
Založnik:ELSEVIER
Leto izida:2024
Št. strani:str. 1-5
Številčenje:Letn. 18, članek št. 100584
PID:20.500.12556/DKUM-91189 Novo okno
UDK:004.8:616-083.98
COBISS.SI-ID:187063811 Novo okno
DOI:10.1016/j.resplu.2024.100584 Novo okno
ISSN pri članku:2666-5204
Avtorske pravice:© 2024 The Author(s). Published by Elsevier B.V.
Datum objave v DKUM:27.11.2024
Število ogledov:279
Število prenosov:15
Metapodatki:XML DC-XML DC-RDF
Področja:Ostalo
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Vaša ocena:Ocenjevanje je dovoljeno samo prijavljenim uporabnikom.
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Licence

Licenca:CC BY-NC-ND 4.0, Creative Commons Priznanje avtorstva-Nekomercialno-Brez predelav 4.0 Mednarodna
Povezava:http://creativecommons.org/licenses/by-nc-nd/4.0/deed.sl
Opis:Najbolj omejujoča licenca Creative Commons. Uporabniki lahko prenesejo in delijo delo v nekomercialne namene in ga ne smejo uporabiti za nobene druge namene.
Začetek licenciranja:23.02.2024

Sekundarni jezik

Jezik:Slovenski jezik
Ključne besede:generativna umetna inteligenca, bibliometrična analiza, kongres, urgentna medicina, Evropski svet za reanimacijo


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