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A bibliometric analysis of artificial intelligence applied to cervical cancer.

作者信息

Huang Qiang, Su Wenmei, Li Shujun, Lin Yanming, Cheng Zhen, Chen Yuting, Mo Yanli

机构信息

Department of Ultrasound, Affiliated Hospital of Guangdong Medical University, Zhanjiang, China.

Department of Pulmonary Oncology, Affiliated Hospital of Guangdong Medical University, Zhanjiang, China.

出版信息

Front Med (Lausanne). 2025 Apr 8;12:1562818. doi: 10.3389/fmed.2025.1562818. eCollection 2025.


DOI:10.3389/fmed.2025.1562818
PMID:40265176
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12011737/
Abstract

OBJECTIVE: This study conducts a bibliometric analysis of artificial intelligence (AI) applications in cervical cancer to provide a comprehensive overview of the research landscape and current advancements. METHODS: Relevant publications on cervical cancer and AI were retrieved from the Web of Science Core Collection. Bibliometric analysis was performed using CiteSpace and VOSviewer to assess publication trends, authorship, country and institutional contributions, journal sources, and keyword co-occurrence patterns. RESULTS: From 1996 to 2024, our analysis of 770 publications on cervical cancer and AI showed a surge in research, with 86% published in the last 5 years. China (315 pubs, 32%) and the US (155 pubs, 16%) were the top contributors. Key institutions were the Chinese Academy of Sciences, Southern Medical University, and Huazhong University of Science and Technology. Research hotspots included disease prediction, image analysis, and machine learning in cervical cancer. Schiffman led in publications (12) and citations (207). China had the highest citations (3,819). Top journals were "Diagnostics," "Scientific Reports," and "Frontiers in Oncology." Keywords like "machine learning" and "deep learning" indicated current research trends. This study maps the field's growth, highlighting key contributors and topics. CONCLUSION: This bibliometric analysis provides valuable insights into research trends and hotspots, guiding future studies and fostering collaboration to enhance AI applications in cervical cancer.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/cbea6805b3b3/fmed-12-1562818-g0004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/a4454f498137/fmed-12-1562818-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/4c12be2dddfa/fmed-12-1562818-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/8865f0939f46/fmed-12-1562818-g0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/cbea6805b3b3/fmed-12-1562818-g0004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/a4454f498137/fmed-12-1562818-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/4c12be2dddfa/fmed-12-1562818-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/8865f0939f46/fmed-12-1562818-g0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1687/12011737/cbea6805b3b3/fmed-12-1562818-g0004.jpg

相似文献

[1]
A bibliometric analysis of artificial intelligence applied to cervical cancer.

Front Med (Lausanne). 2025-4-8

[2]
Research Trends in the Application of Artificial Intelligence in Oncology: A Bibliometric and Network Visualization Study.

Front Biosci (Landmark Ed). 2022-8-31

[3]
A quantitative analysis of artificial intelligence research in cervical cancer: a bibliometric approach utilizing CiteSpace and VOSviewer.

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[4]
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[5]
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[6]
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[7]
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[8]
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[9]
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Clin Exp Med. 2024-8-23

[10]
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Front Oncol. 2022-8-25

引用本文的文献

[1]
AI in Cervical Cancer Cytology Diagnostics: A Narrative Review of Cutting-Edge Studies.

Bioengineering (Basel). 2025-7-16

本文引用的文献

[1]
Deep learning using histological images for gene mutation prediction in lung cancer: a multicentre retrospective study.

Lancet Oncol. 2025-1

[2]
Hematological indicator-based machine learning models for preoperative prediction of lymph node metastasis in cervical cancer.

Front Oncol. 2024-8-13

[3]
Exploring the role of artificial intelligence, large language models: Comparing patient-focused information and clinical decision support capabilities to the gynecologic oncology guidelines.

Int J Gynaecol Obstet. 2025-2

[4]
Automated segmentation in pelvic radiotherapy: A comprehensive evaluation of ATLAS-, machine learning-, and deep learning-based models.

Phys Med. 2024-9

[5]
Random forests for the analysis of matched case-control studies.

BMC Bioinformatics. 2024-8-1

[6]
A multi-Task Learning based applicable AI model simultaneously predicts stage, histology, grade and LNM for cervical cancer before surgery.

BMC Womens Health. 2024-7-26

[7]
Improvement of accumulated dose distribution in combined cervical cancer radiotherapy with deep learning-based dose prediction.

Front Oncol. 2024-7-8

[8]
Predicting lower limb lymphedema after cervical cancer surgery using artificial neural network and decision tree models.

Eur J Oncol Nurs. 2024-10

[9]
Evaluation of ChatGPT's Potential in Tailoring Gynecological Cancer Therapies.

In Vivo. 2024

[10]
DeepCyto: a hybrid framework for cervical cancer classification by using deep feature fusion of cytology images.

Math Biosci Eng. 2022-4-24

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