Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis

Dental age estimation (DAE) is important in age-related studies ranging from forensics, clinical dentistry and bioanthropology. DAE heavily relies on image analysis and morphometrics and has underwent academic scrutiny to improve its level of reliability and accuracy. The recent rise of artificial i...

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Published in:INTELIGENCIA ARTIFICIAL-IBEROAMERICAN JOURNAL OF ARTIFICIAL INTELLIGENCE
Main Authors: Zainuddin, Muhammad Zaid; Azizan, Azliyana; Yusof, Mohd Yusmiaidil Putera Mohd
Format: Article
Language:English
Published: ASOC ESPANOLA INTELIGENCIA ARTIFICIAL 2025
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001409625300001
author Zainuddin
Muhammad Zaid; Azizan
Azliyana; Yusof
Mohd Yusmiaidil Putera Mohd
spellingShingle Zainuddin
Muhammad Zaid; Azizan
Azliyana; Yusof
Mohd Yusmiaidil Putera Mohd
Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
Computer Science
author_facet Zainuddin
Muhammad Zaid; Azizan
Azliyana; Yusof
Mohd Yusmiaidil Putera Mohd
author_sort Zainuddin
spelling Zainuddin, Muhammad Zaid; Azizan, Azliyana; Yusof, Mohd Yusmiaidil Putera Mohd
Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
INTELIGENCIA ARTIFICIAL-IBEROAMERICAN JOURNAL OF ARTIFICIAL INTELLIGENCE
English
Article
Dental age estimation (DAE) is important in age-related studies ranging from forensics, clinical dentistry and bioanthropology. DAE heavily relies on image analysis and morphometrics and has underwent academic scrutiny to improve its level of reliability and accuracy. The recent rise of artificial intelligence (AI) in data analysis allows accurate analysis without the influence of human error. As AI has penetrated DAE research, there is a lack of scientometric analysis regarding AI-driven DAE studies. This scientometric study presents an analysis of AI-driven DAE research based on data from the Scopus and Web of Science literature databases. This study examines various parameters, such as publication trends, prolific countries and research institutions, active journals and highly cited publications as well as highly used keywords pertaining to AI-driven DAE studies. Notably, though the niche area is fairly recent, there has been a substantial increase in the number of publications in AI-driven DAE research in the past few years. Countries such as China, Malaysia and South Korea are currently at the forefront of publications on the application of AI in DAE studies. This study also finds that a variety of journals ranging from dentistry, law, forensics and computer science are publishing studies keywords were amongst the dominant keywords used. This scientometric analysis provides an overview of studies and may help identify possible research gaps.
ASOC ESPANOLA INTELIGENCIA ARTIFICIAL
1137-3601
1988-3064
2025
28
75
10.4114/intartif.vol28iss75pp101-113
Computer Science
gold
WOS:001409625300001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001409625300001
title Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
title_short Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
title_full Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
title_fullStr Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
title_full_unstemmed Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
title_sort Artificial Intelligence (AI) in Dental Age Estimation Studies: A Scientometric Analysis
container_title INTELIGENCIA ARTIFICIAL-IBEROAMERICAN JOURNAL OF ARTIFICIAL INTELLIGENCE
language English
format Article
description Dental age estimation (DAE) is important in age-related studies ranging from forensics, clinical dentistry and bioanthropology. DAE heavily relies on image analysis and morphometrics and has underwent academic scrutiny to improve its level of reliability and accuracy. The recent rise of artificial intelligence (AI) in data analysis allows accurate analysis without the influence of human error. As AI has penetrated DAE research, there is a lack of scientometric analysis regarding AI-driven DAE studies. This scientometric study presents an analysis of AI-driven DAE research based on data from the Scopus and Web of Science literature databases. This study examines various parameters, such as publication trends, prolific countries and research institutions, active journals and highly cited publications as well as highly used keywords pertaining to AI-driven DAE studies. Notably, though the niche area is fairly recent, there has been a substantial increase in the number of publications in AI-driven DAE research in the past few years. Countries such as China, Malaysia and South Korea are currently at the forefront of publications on the application of AI in DAE studies. This study also finds that a variety of journals ranging from dentistry, law, forensics and computer science are publishing studies keywords were amongst the dominant keywords used. This scientometric analysis provides an overview of studies and may help identify possible research gaps.
publisher ASOC ESPANOLA INTELIGENCIA ARTIFICIAL
issn 1137-3601
1988-3064
publishDate 2025
container_volume 28
container_issue 75
doi_str_mv 10.4114/intartif.vol28iss75pp101-113
topic Computer Science
topic_facet Computer Science
accesstype gold
id WOS:001409625300001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001409625300001
record_format wos
collection Web of Science (WoS)
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